Fact-checked by Grok 2 weeks ago

Flexible electronics

Flexible electronics refers to electronic devices, circuits, and systems that can withstand deformations such as bending, stretching, folding, or twisting while preserving their electrical functionality, typically achieved through the use of flexible substrates like polymer films or thin foils instead of rigid wafers. This technology leverages materials with low and high to enable conformability to curved or dynamic surfaces, contrasting with traditional rigid . The development of flexible electronics traces back to the , when initial concepts for flexible cells were proposed, followed by the emergence of organic electronic devices with flexible properties in the 1980s. Significant milestones include the introduction of malleable inorganic flexible electronics in and advancements in roll-to-roll printing for RFID tags using like carbon nanotubes by 2009. Key materials have evolved from early to include inorganic options such as nanowires (e.g., ZnO, ), nanomembranes (e.g., thin or GaAs layers), and two-dimensional materials like and MoS₂, often integrated onto elastic substrates including (PI), (PDMS), or bio-derived alternatives like and . Fabrication methods encompass bottom-up approaches like and transfer printing, as well as top-down techniques such as lithographic etching and , enabling scalable production. Flexible electronics offers advantages over conventional rigid systems, including reduced weight, enhanced portability, for biomedical uses, and the ability to integrate seamlessly with or irregular geometries. Prominent applications span wearable monitors for vital detection, epidermal sensors for neurological (e.g., EEG and EMG), flexible displays in consumer devices by companies like and , solutions such as bendable batteries and supercapacitors, and transient implants that dissolve in the body after use. As of 2025, adoption has expanded to foldable smartphones and AI-integrated wearable sensors. Nature-inspired innovations, drawing from structures like for strain sensitivity or for self-healing, have further expanded possibilities in sustainable, biodegradable devices. Despite progress, challenges persist in achieving long-term mechanical durability under repeated , maintaining high in stretched states, and large-area compatible with inorganic materials on substrates. The global market for flexible electronics was valued at approximately US$32 billion as of 2025, projected to reach US$71 billion by 2032, fueled by investments in research centers like Stanford's eWEAR-X and the NextFlex Flexible Hybrid Electronics Manufacturing Innovation Institute (with involvement). Ongoing efforts focus on multifunctional, eco-friendly designs to broaden adoption in healthcare, , and smart textiles.

Fundamentals

Definition and Principles

Flexible electronics encompass electronic systems and devices constructed on bendable, stretchable, or conformable substrates that preserve their electrical functionality during deformation, distinguishing them from conventional rigid fabricated on stiff materials such as wafers or plates. This capability arises from the use of thin, components that can conform to curved or dynamic surfaces without compromising performance, enabling novel form factors for integration into everyday objects. The core principles of flexible electronics revolve around achieving mechanical flexibility while upholding electrical integrity. Mechanical flexibility is quantified by metrics like bending radius and strain tolerance; advanced configurations can endure tensile strains up to 10-20% and bending radii as small as 1 mm without failure. Electrically, these systems maintain conductivity and charge transport efficiency under deformation, often through structured designs that distribute stress evenly across components. Thin-film technologies play a pivotal role, enabling the deposition of ultrathin layers (typically nanometers to micrometers thick) that resist cracking and delamination, thus ensuring circuit reliability during repeated flexing or stretching. Fundamental concepts include piezoresistivity, the phenomenon where applied mechanical alters a material's electrical resistivity, which is harnessed in flexible strain gauges to detect deformation with high . These gauges, integrated into flexible substrates, convert into measurable resistance changes for applications like motion sensing. The ε in such substrates is defined as \epsilon = \frac{\Delta L}{L} where \Delta L is the change in length and L is the original length; exceeding critical thresholds—around 0.2-1% for brittle metals but significantly higher (up to tens of percent) for ductile polymers—can lead to irreversible damage like cracking.

Historical Development

The origins of flexible electronics trace back to the early , when German inventor Albert Hanson patented the first flexible circuitry design in 1903, featuring flat copper strips embedded in insulating material between layers of paraffin-coated paper to create a rudimentary flexible wiring system. This innovation laid the groundwork for printed wiring on flexible substrates, though practical implementation was limited by materials and manufacturing constraints at the time. By the 1940s, during , flexible circuits began seeing military applications as replacements for bulky wire harnesses in radios, proximity fuzes, and other compact electronic systems, enabling more reliable and space-efficient designs in wartime equipment. The 1960s and 1970s marked significant advancements with the introduction of durable substrates like , developed by under the trade name in 1961, which offered exceptional thermal stability and flexibility for harsh environments. Companies such as and adopted these materials for flexible circuits in computing and , including integrated chip carriers and tape automated bonding (TAB) processes that facilitated high-density interconnections for early integrated circuits. These developments were particularly vital for space applications, where lightweight and resilient electronics were essential, as seen in NASA's use of polyimide-based components for and wiring in missions like Apollo. In the and , the field expanded with the rise of , driven by conductive inks that enabled low-cost deposition of circuits on flexible substrates through techniques like and inkjet. A pivotal breakthrough came in 1987 when Ching W. Tang and Steven Van Slyke at Eastman Kodak demonstrated the first practical organic light-emitting diode () using stacked layers, opening doors to flexible displays and . This era also saw the establishment of industry standards, such as the IPC-6013 qualification and performance specification for flexible printed boards, first released in 1998, which defined fabrication requirements and acceptance criteria to ensure reliability. The 2000s brought innovations in stretchable electronics, exemplified by John A. Rogers' 2008 work at the University of Illinois, where noncoplanar serpentine interconnect designs allowed inorganic semiconductors to withstand large mechanical deformations without performance loss. Key events included the demonstration of a flexible solar cell prototype in 2004 using roll-to-roll processing with nanomaterials, paving the way for lightweight photovoltaics. Post-2010, integration with the Internet of Things (IoT) and wearables accelerated, highlighted by Samsung's commercialization of flexible OLED displays in 2013 with the Galaxy Round smartphone, marking a shift toward consumer-ready curved and foldable devices. Subsequent milestones include the launch of the first widely available foldable smartphone, the Samsung Galaxy Fold, in 2019, which popularized dual-screen flexible displays in consumer electronics. As of 2025, advancements in flexible perovskite solar cells have achieved efficiencies over 25% in lab prototypes, enabling lighter and more integrable photovoltaic solutions for wearables and portable devices.

Materials

Substrates and Base Materials

Substrates form the foundational non-conductive layers in flexible electronics, providing mechanical support while enabling bending, stretching, or folding without compromising circuit integrity. Common materials include (PI), which offers high-temperature stability up to over 400°C, making it suitable for processes involving elevated thermal conditions. (PET) serves as a low-cost option with excellent optical clarity, transmitting over 80% of visible light, ideal for transparent displays and sensors. Polydimethylsiloxane (PDMS), on the other hand, provides superior stretchability with elongation exceeding 100%, accommodating dynamic deformations in wearable devices. Key mechanical and thermal properties guide substrate performance. PI exhibits a of 2.8–4.5 GPa, enabling robust support under stress, alongside a coefficient of thermal expansion () of approximately 20 ppm/°C to minimize dimensional changes during temperature fluctuations. Polymers like PI, , and PDMS generally feature dielectric constants in the range of 2.5–3.5, supporting efficient electrical insulation without excessive signal interference. These attributes, combined with 's of 20–80 ppm/K, ensure compatibility with overlying conductive layers in multilayer assemblies. Advanced substrates address emerging needs in and functionality. Cellulose-based bio-substrates, derived from renewable sources like wood nanofibrils, promote eco-friendly designs with biodegradability and over 80% for thin films, reducing through fungal degradation. Graphene-oxide composites enhance barrier properties against moisture, achieving up to 50% reduction in transmission rates in polymer matrices like , thereby improving device longevity in humid environments. Selection of substrates involves trade-offs among flexibility, durability, and . For instance, materials must support bending radii below 1 mm to enable compact, conformable , while enduring over 10^6 fatigue cycles to withstand repeated deformations without cracking. is critical for medical applications, where substrates like PDMS and derivatives exhibit non-toxicity and compatibility with biological tissues, facilitating skin-contact or implantable uses. Environmental considerations increasingly favor biodegradable options to mitigate the ecological impact of discarded . Silk fibroin, a protein-based material from cocoons, emerged in 2010s research as a tunable biodegradable , offering adjustable degradation rates from hours to years, high optical , and strength for transient bioelectronics.

Conductive Elements and Foils

In flexible electronics, traditional conductive foils primarily consist of , which serves as the standard material for high-performance circuits due to its excellent electrical of 5.96 × 10^7 S/m and typical thicknesses ranging from 5 to 35 μm. foils are produced through two main processes: electrodeposited (ED) copper, formed by onto a drum for a columnar grain structure that provides good adhesion but limited , and rolled annealed (RA) copper, created by repeated rolling and to yield an elongated, equiaxed grain structure that enhances flexibility and bend endurance. RA copper is particularly favored for applications requiring repeated deformation, as it maintains integrity under bending radii as small as 0.1 mm without significant cracking. Alternatives to metal foils address limitations in transparency and stretchability, such as silver nanowires (AgNWs), which form percolating networks for transparent conductors with sheet resistances below 20 Ω/sq and optical transmittances exceeding 85% at 550 nm. These networks enable flexible electrodes in optoelectronic devices while accommodating moderate strains up to 20% with minimal resistance increase. For highly stretchable interconnects, carbon nanotubes (CNTs) and are integrated into composites, retaining over 90% of initial conductivity at 50% strain through aligned or buckled structures that distribute mechanical stress. CNT-based inks, for instance, achieve conductivities up to 10^4 S/cm in matrices, supporting dynamic deformations in wearable circuits. Emerging materials like have shown promise as of 2024, offering conductivities exceeding 10^4 S/cm under strains up to 100% due to their 2D structure and metallic conductivity. A key challenge for metallic conductors is crack formation under cyclic bending, which disrupts percolation paths and increases by up to 100-fold after 10^4 cycles at 1 mm radius. This fatigue arises from grain boundary sliding and void in thin films. Solutions include or designs that localize strain away from straight traces, allowing endurance beyond 10^5 cycles, and polymer doping of metal films to form nanocomposites that suppress microcracks via interfacial toughening. The electrical response of these conductors to deformation is captured by the piezoresistive equation for resistivity change under strain: \rho = \rho_0 (1 + GF \epsilon) where \rho is the strained resistivity, \rho_0 is the initial resistivity, GF is the gauge factor (approximately 2 for bulk metals), and \epsilon is the applied strain; this linear approximation holds for strains below 5% in metals but deviates nonlinearly in nanomaterials due to junction effects. For reliable integration, thin-film conductors must exhibit strong electromigration resistance, with mean time to failure designed to exceed 10 years under typical operating conditions (e.g., 85°C and current densities up to 10^6 A/cm²) in passivated copper lines, achieved through bamboo microstructures that limit grain boundary diffusion.

Adhesives and Encapsulation Layers

In flexible electronics, adhesives serve as critical interfacial materials for bonding layers, such as conductive foils to substrates, enabling mechanical integrity during bending and stretching. Acrylic-based adhesives are widely used for low-temperature bonding processes, typically curing at 80-120°C to minimize thermal stress on sensitive components. Epoxy adhesives provide high-strength bonding, achieving shear strengths exceeding 20 MPa, which is essential for durable multilayer stacks under mechanical loads. Anisotropic conductive films (ACF) facilitate precise interlayer electrical connections by allowing conductivity in the z-direction while insulating laterally, commonly applied in flex-on-board and flex-on-flex assemblies through thermocompression bonding. Encapsulation layers protect active components from environmental factors like moisture and oxygen, ensuring long-term reliability in flexible devices. Parylene-C, a conformal coating deposited via , forms pinhole-free barriers with water vapor transmission rates (WVTR) of approximately 1-5 g/m²/day for typical thicknesses of 5-10 μm, making it suitable for encapsulating . Silicone elastomers offer stretchable encapsulation options, accommodating strains up to 100% while maintaining barrier properties, ideal for wearable applications. Key properties of these materials include adhesion metrics like peel strength, which ranges from 5-10 N/cm for polyimide-copper bonds, ensuring resistance to during flexing. Hygroscopic expansion must be controlled to prevent warping, as absorption can induce volumetric changes leading to buildup. For display applications, encapsulation layers often exhibit optical greater than 90%, preserving visual clarity in flexible screens. Advanced developments enhance functionality, such as self-healing adhesives incorporating microcapsules that release healing agents upon damage, achieving recovery rates over 80% in mechanical properties for prolonged device lifespan. UV-curable adhesives support high-speed , enabling efficient fabrication of large-area flexible circuits with rapid curing under exposure. A common failure mode is under high humidity, exacerbated by coefficient of thermal expansion () mismatches greater than 10 ppm/°C between bonded layers, which generates interfacial stresses during environmental exposure. This is mitigated by selecting materials with closely matched CTEs to maintain bond integrity.

Manufacturing Techniques

Fabrication Methods

Fabrication methods for flexible electronics encompass a range of techniques adapted from traditional processing to accommodate bendable substrates, enabling the creation of circuits on materials like or . These methods focus on patterning conductive elements with precision while maintaining mechanical flexibility, progressing from substrate preparation through deposition, patterning, and integration. Key approaches include subtractive processes like and additive techniques such as , often scaled via continuous roll-to-roll systems for industrial viability. Photolithography involves coating flexible foils with a photoresist layer, exposing the resist to ultraviolet light through a patterned mask to define circuit features, and subsequently etching unwanted material to reveal the design. For copper-based conductors common in flexible circuits, wet etching with ferric chloride solution selectively removes unprotected metal, achieving resolutions down to 50 μm line widths suitable for interconnects and sensors. This method ensures high fidelity in pattern transfer but requires careful handling to avoid substrate deformation during chemical exposure. Printing technologies provide additive alternatives, depositing functional materials directly onto substrates without masks. ejects conductive inks in precise droplets ranging from 1 to 100 pL, forming patterns with resolutions around 20-50 μm; these inks, often silver nanoparticle-based, yield sheet resistances of 10-50 Ω/sq after , ideal for thin traces in low-power devices. , in contrast, employs a to apply viscous pastes, producing thicker films exceeding 10 μm to enhance and for applications like antennas or electrodes. Roll-to-roll (R2R) processing enables continuous fabrication by feeding flexible webs through sequential stations, handling substrates at speeds up to 100 m/min for high-volume output. This approach integrates or deposition steps, such as vacuum-based for thin films, where material deposition rates reach 1-10 nm/s to form uniform layers like transparent conductors. R2R systems support scalable production of entire devices, from solar cells to displays, by maintaining web tension and during multi-layer buildup. Recent advancements as of 2025 include for higher precision in R2R processes. Emerging methods expand capabilities beyond planar surfaces. Laser direct structuring activates conductive pathways on molded plastics via or , enabling patterning with resolutions under 100 μm for complex geometries in integrated modules. Aerosol printing propels aerosols through a focused sheath gas stream, allowing conformal deposition on non-planar substrates with feature sizes as small as 10 μm, suitable for curved or textured flexible components. Recent developments include improved aerosol techniques for structures in body-conformable . Quality metrics in these processes emphasize reliability and efficiency, with mature techniques like R2R achieving yield rates above 95% through optimized alignment and defect detection. Throughput in high-speed R2R lines can be very high, enabling efficient through automated web handling and inline inspection to minimize waste.

Advantages and Limitations

Flexible electronics offers significant advantages over rigid printed boards (PCBs), particularly in applications requiring compact, , and durable assemblies. One key benefit is savings, with flexible circuits enabling up to 70% volume reduction in electronic assemblies by conforming to irregular shapes and eliminating bulky connectors and wiring harnesses. Additionally, these circuits provide substantial weight reduction, often 50-80% lighter than equivalent rigid PCBs, due to their thin substrates and minimal material usage, which is critical for portable and devices. Flexible electronics also exhibit superior vibration resistance, capable of withstanding accelerations up to 50g without failure, thanks to their and ability to absorb mechanical stress better than rigid boards. Cost benefits emerge particularly in high-volume production, where roll-to-roll (R2R) processing reduces material use and enables 20-50% lower costs at scale compared to batch methods for rigid PCBs, primarily through continuous fabrication and waste minimization. Furthermore, the inherent design flexibility allows for form factors that simplify assembly and reduce overall system complexity, lowering labor and integration expenses in complex layouts. Despite these strengths, flexible electronics presents notable limitations relative to rigid alternatives. Initial tooling costs are generally higher for flexible PCBs due to specialized for handling flexible substrates and precise processes. Reliability challenges include cracking in conductive traces after approximately 10^5 cycles, which can compromise long-term in dynamic environments. Flexible electronics may face challenges in management due to thinner profiles and substrates with lower compared to rigid PCBs. Comparative analyses show that flexible electronics become cost-competitive with rigid options at higher production volumes, driven by amortized tooling and material savings. Environmentally, flexible electronics based on recyclable polymers offer advantages over rigid counterparts by reducing e-waste volume, as their substrates degrade more readily and support modular disassembly, potentially lowering the of discarded devices. To mitigate limitations, established design rules emphasize strain distribution, such as avoiding sharp bends with radii less than 10 times the substrate thickness to prevent stress concentrations and extend fatigue life.

Circuit Configurations

Single-Sided Circuits

Single-sided flexible circuits represent the most basic configuration in flexible electronics, consisting of a single layer of conductors laminated to a , with electrical connections primarily achieved via edge pads or exposed conductor areas at the edges. This structure enables straightforward routing for low-complexity interconnects, where the base provides flexibility and thermal stability, as detailed in materials elsewhere. The absence of internal vias simplifies the , focusing interconnections on peripheral access points to maintain overall thinness and bendability. Key design features include conductor widths typically ranging from 0.1 to 0.5 mm, allowing for compact layouts while accommodating standard current capacities, and a total circuit thickness under 0.2 mm to ensure high flexibility without compromising structural integrity. These circuits are particularly suited for applications as flat harnesses that replace traditional wire bundles, reducing weight and assembly complexity in space-constrained environments. The substrate, often 25-50 μm thick, bonds to the foil via , supporting the single-sided layout for reliable . Fabrication begins with laminating a thin foil sheet (typically 18-35 μm) to the substrate, followed by photolithographic patterning and chemical to define the traces from the full foil. A coverlay, usually a film with , is then applied over the conductors for electrical insulation and , ensuring the remains flexible post-processing. This -based allows precise over trace geometries, with the coverlay providing mechanical robustness during bending. In terms of , single-sided circuits support bend radii greater than 10 mm for dynamic applications, maintaining over repeated flexing cycles, and exhibit electrical resistance below 1 Ω/cm for traces, enabling efficient low-power signal distribution. These attributes make them ideal for simple sensors, such as those in wearable health monitors or environmental detectors, where minimal layering suffices for basic functionality. Early adoption in applications evolved this configuration for reliable interconnects in compact devices, as explored in historical developments. A notable variant is the back-bared single-sided circuit, where portions of the base are removed to expose the conductors on the reverse side, facilitating direct edge connections without additional adhesives. This enhances assembly efficiency and reduces overall thickness, particularly beneficial for edge-bonding in tight spaces, while preserving the single-layer simplicity.

Double-Sided and Multilayer Circuits

Double-sided flexible circuits feature conductive traces on both surfaces of a flexible , typically or , enabling more complex routing and higher component density compared to single-sided designs. These circuits interconnect the layers using plated through-holes (PTH), which are metallized vias that penetrate the substrate to provide electrical continuity. PTH diameters commonly range from 0.05 mm to 0.3 mm, with aspect ratios up to 10:1 to accommodate thin substrates while maintaining reliability during flexing. This configuration supports applications requiring moderate complexity, such as interconnecting sensors in compact devices. Multilayer flexible circuits extend this architecture to three or more conductive layers, separated by insulators, allowing for advanced signal routing and integration of multiple functions within a thin profile. Interconnections employ PTH for full-layer penetration, alongside vias (connecting an outer layer to an inner layer without reaching the opposite side) and buried vias (linking only inner layers). These vias enable higher , with minimum diameters as small as 0.025 mm in advanced designs. Interlayer tolerances are typically maintained below 50 μm to ensure precise registration and prevent shorts or opens, achieved through high-precision and processes. Total thickness generally falls between 0.3 mm and 1 mm, balancing flexibility with structural integrity. Design considerations for these circuits often include (ZIF) connectors at terminations, which facilitate reliable, low-stress mating with rigid boards or modules without damaging the flex material. Sculptured profiles, involving selective to vary conductor thickness, allow the circuits to conform to three-dimensional shapes, enhancing adaptability in non-planar assemblies. For performance, multilayer designs support high-speed up to 10 Gbps through controlled impedance traces in or stripline configurations, minimizing and . Thermal vias, integrated as arrays under heat-generating components, aid in heat spreading to inner planes or external sinks, mitigating in dynamic environments. In practice, double-sided and multilayer flexible circuits enable compact assemblies in space-constrained devices, such as camera modules where they route signals between image sensors and processors, and wearables where they integrate multiple sensors while conforming to body contours.

Rigid-Flex Hybrids

Rigid-flex hybrids integrate flexible and rigid (PCB) sections into a single assembly, enabling devices to combine conformability in dynamic areas with mechanical stability for component mounting. These hybrids typically feature flexible regions constructed from (PI)-based substrates, which provide high thermal stability and capabilities up to 0.5 mm, interfaced with rigid sections made from epoxy laminates for structural support. The transition between sections is achieved through stitched vias or adhesively bonded overlaps, ensuring electrical continuity without discrete connectors. Design zones in rigid-flex hybrids delineate flex areas optimized for repeated bending—often limited to 10-20% of the total board area to minimize stress—while rigid zones accommodate surface-mount components such as integrated circuits () and connectors that require flat, vibration-resistant platforms. To prevent or crack propagation at the flex-rigid , tear-stop features like slotted patterns or widened pads are incorporated, distributing mechanical loads and enhancing reliability under thermal cycling from -55°C to 125°C. These designs prioritize coefficient of () compatibility, with PI exhibiting a CTE of approximately 20-30 /°C compared to FR4's 12-18 /°C in the plane, to avoid warping during assembly. Fabrication of rigid-flex hybrids employs sequential processes, where flexible PI layers are first built and then bonded to rigid cores using low-CTE adhesives (10-12 ppm/°C) to match material expansions and prevent interlayer shear. Plated through-holes (PTHs) extend across both sections for interlayer connectivity, with controlled drilling and plating to maintain integrity in flex zones. Post-fabrication testing includes dynamic bend cycles exceeding 1000 repetitions at a 1-2 mm radius, per industry benchmarks, to verify fatigue resistance and electrical performance under flexure. The primary advantages of rigid-flex hybrids include the elimination of bulky wire harnesses and connectors, which can significantly reduce assembly time and overall system weight in compact enclosures. This integration enhances by minimizing (EMI) at junctions and improves reliability in harsh environments. In applications, such as systems, rigid-flex hybrids facilitate conformal fitting in irregular spaces while supporting high-density components, as demonstrated in satellite interconnects where they withstand launch vibrations and thermal extremes. Compliance with standards like IPC-6013 ensures qualification for rigid-flex assemblies, specifying performance classes (1-3) based on end-use reliability, with Class 3 for high-reliability sectors like requiring in 100% electrical testing and resistance. The rigid portions align with IPC-6012 guidelines for qualification, including annular ring dimensions and , while flex areas adhere to IPC-2223 for and material integrity. These standards mandate documentation of matching and tear-stop efficacy to certify the hybrid's durability.

Applications

Wearable and Biomedical Devices

Flexible electronics have revolutionized wearable and biomedical devices by enabling non-invasive, conformable systems that integrate seamlessly with the for and . These devices leverage stretchable substrates and biocompatible materials to create skin-like interfaces that track such as , , and muscle activity in real-time, reducing motion artifacts and improving user comfort during daily activities. By prioritizing mechanical compliance and wireless connectivity, they facilitate continuous without restricting movement, supporting applications from fitness tracking to clinical diagnostics. Smart textiles represent a prominent example, embedding sensors directly into fabrics for unobtrusive monitoring. For instance, ECG patches fabricated using screen-printed Ag/AgCl conductive inks on flexible substrates enable high-fidelity electrocardiogram recordings while maintaining washability and breathability for extended wear. Similarly, epidermal electronics, such as ultrathin strain gauges applied to the chest or , detect subtle deformations associated with , providing quantitative metrics for patterns in ambulatory settings. These systems emphasize , with device moduli tuned to approximately 1 MPa to match the mechanical properties of and (PDMS) substrates, minimizing interfacial stresses during conformal attachment. Key features include wireless integration via (NFC), allowing battery-free or low-power data transmission to external readers over short distances. Many designs achieve battery life exceeding 24 hours, supporting prolonged monitoring without frequent recharging, as demonstrated in flexible ECG systems with optimized . Advancements in bio-resorbable circuits further enhance utility for temporary implants; for example, silk-based transient electronics, developed in 2012, dissolve harmlessly in biofluids after programmed operation, eliminating the need for surgical removal in applications like or short-term sensing. In neural interfaces, flexible arrays with over 1000 channels enable high-resolution brain activity mapping, using penetrating microneedles on polymer substrates to interface with cortical tissue while reducing inflammation. Performance metrics underscore their clinical viability, with signal-to-noise ratios exceeding 60 dB for biosignals like (EMG) and ECG, surpassing traditional rigid electrodes in noisy environments. Compatibility with sterilization protocols, such as autoclaving at 121°C for 20 minutes, ensures reusability or safe implantation without compromising functionality, as verified in organic transistor-based devices. The biomedical segment of the flexible electronics market has grown to approximately $3.5 billion as of 2025, propelled by FDA approvals for resorbable and implantable systems that address chronic conditions like opioid dependence and neurological disorders. In 2024, the FDA approved additional flexible neural lace implants for monitoring, expanding clinical adoption.

Displays and Optoelectronics

Flexible displays and represent a key application of flexible electronics, enabling bendable, rollable, and conformable visual and photonic devices that integrate organic and inorganic materials on plastic substrates such as (). These technologies leverage the mechanical compliance of flexible substrates to create lightweight, portable screens and lighting solutions that can withstand repeated bending without failure, contrasting with rigid glass-based counterparts. Polymer substrates allow for curvatures down to millimeters, facilitating innovations in and architectural integrations. Flexible liquid crystal displays (LCDs) utilize -dispersed s (PDLC) coated on substrates, achieving bend radii as small as 5 mm while maintaining resolutions around 200 pixels per inch (). In PDLC configurations, droplets dispersed in a scatter in the off-state and align to transmit under an , enabling bistable or dynamic switching suitable for low-power, reflective displays. These devices offer advantages in flexibility and reduced thickness compared to traditional LCDs, with prototypes demonstrating operational integrity under cyclic bending. Organic light-emitting diode () displays incorporate organic emissive layers deposited on substrates, delivering luminous efficiencies exceeding 60 lm/W and operational lifetimes greater than 10,000 hours at typical levels as of 2023. The self-emissive nature of eliminates the need for backlights, allowing for thinner, more flexible architectures that can be folded or rolled. A notable example is LG's 2019 rollable prototype, a 65-inch television that retracts into its base, showcasing seamless transitions between full-screen and compact modes while preserving image quality. In 2025, BOE demonstrated a 17-inch rollable display for laptops with enhanced efficiency. Beyond displays, flexible light-emitting diodes (LEDs) serve as optoelectronic components in applications like conformable lighting strips, where inorganic LED chips are mounted on flexible interconnects to provide uniform illumination over curved surfaces. These strips enable customizable, energy-efficient lighting in architectural and wearable contexts, with efficiencies supporting prolonged operation. Additionally, flexible electrochromic films, often based on tungsten oxide or derivatives on foils, function in smart windows by modulating with switching times under 3 seconds—such as 1.5 seconds for bleaching and 2.7 seconds for coloration—allowing rapid control of solar heat gain. Key challenges in these include ensuring robust encapsulation to block environmental ingress, with barrier layers designed to limit oxygen permeation rates below 10^{-6} g/m²/day, preventing degradation of sensitive materials. Mechanical during bending can induce shrinkage or , necessitating designs that constrain shrinkage to less than 5% through strain-relief architectures like neutral plane positioning. These displays typically employ transparent conductive electrodes, such as (ITO) alternatives, to maintain electrical performance under deformation. Commercial adoption is exemplified by the launched in 2019, which integrates a 7.3-inch flexible active-matrix () display capable of folding with a radius under 5 mm, revolutionizing foldable smartphones.

Energy Storage and Harvesting

Flexible batteries represent a critical advancement in powering bendable , with lithium-polymer thin films emerging as a prominent due to their high and adaptability to flexible substrates. These thin-film configurations achieve practical energy densities exceeding 250 Wh/kg, enabling compact, lightweight designs suitable for integration into wearable devices. Additionally, fiber-shaped batteries, such as water-based variants, have been developed for applications, allowing seamless weaving into fabrics while maintaining structural integrity under repeated deformation. These fiber formats exhibit capacity retention greater than 80% after 500 cycles, supporting prolonged use in dynamic environments like or biomedical sensors. Such batteries leverage solid , like poly()-block-poly() with salts, to ensure safety and flexibility without liquid components that could leak under bending. Supercapacitors provide complementary high-power capabilities for flexible electronics, particularly those requiring rapid charge-discharge cycles. Carbon nanotube (CNT) electrodes deposited on fabric substrates have demonstrated exceptional performance, with power densities surpassing 10 kW/kg, far exceeding traditional batteries for burst-power needs in wearables. These textile-integrated devices remain functional when bent up to 180°, retaining capacitance and structural stability due to the conductive network formed by aligned CNTs on flexible cotton or polymer weaves. The high surface area of CNTs enhances ion accessibility, enabling energy densities around 20-50 Wh/kg while prioritizing power output for applications like transient sensors or haptic feedback in soft robotics. Flexible solar cells enable self-powered systems by harvesting ambient light, with organic photovoltaics (OPV) offering lightweight, solution-processable options for conformable surfaces. OPV devices on flexible substrates typically achieve power conversion efficiencies (PCE) of 10-15%, benefiting from low-temperature printing methods compatible with plastics like . The PCE is calculated as \eta = \frac{J_{sc} \times V_{oc} \times FF}{P_{in}} where J_{sc} is the short-circuit current density, V_{oc} is the , FF is the fill factor (often ~0.6 for OPV), and P_{in} is the incident light power. Recent progress with non-fullerene acceptors has pushed flexible OPV PCE to 20.2% as of 2024. Complementing OPV, flexible solar cells have reached over 23% efficiency as of 2025 through innovations like porous-planar electron transport layers, which improve charge extraction and film uniformity on bendable substrates. These cells maintain under mechanical stress, with certified efficiencies up to 23.5% for lab-scale devices and scalable modules exceeding 18% over areas up to 400 cm². Integration of these components via printed circuits forms all-in-one energy harvesters, combining batteries, supercapacitors, and solar cells on shared flexible substrates for autonomous operation. enable monolithic designs where OPV layers directly charge adjacent storage units, achieving outputs greater than 1 mW/cm² under indoor lighting through optimized low-light PCE in OPV. A notable example is the 2018 prototype of wearable photovoltaic patches developed at , which integrated ultrathin OPV films with flexible circuits to power skin-adherent sensors, demonstrating seamless from body movement and ambient light. In 2025, commercial self-powered wearables incorporating flexible cells entered the market for remote health monitoring.

Automotive and Industrial Uses

In automotive applications, flexible electronics enable compact sensor networks within dashboards and other constrained spaces, facilitating real-time data collection for safety systems. For instance, flex circuits are integral to airbag deployment mechanisms, connecting crash sensors to control units for rapid response during collisions. These circuits are engineered to operate reliably across a wide temperature range of -40°C to 125°C, accommodating extreme conditions in vehicle interiors and exteriors. Flexible printed circuits (FPCs) also play a critical role in (EV) battery management systems (BMS), where they interconnect battery cells, monitor voltage and temperature, and interface with vehicle electronics to ensure optimal performance and safety. By conforming to the irregular shapes of packs, FPCs reduce wiring complexity and enhance thermal management during charging and discharging cycles. In industrial settings, flexible electronics support rugged applications such as , where they form "skins" for tactile on robotic and manipulators. These sensors detect variations with sensitivities in the 0.1-10 kPa range, enabling precise object handling and in assembly lines. For monitoring, flexible strain sensors embedded in belts track tension, alignment, and wear, preventing failures in systems. Key features of flexible electronics in these environments include high vibration tolerance, often tested to MIL-STD-810G standards with profiles up to 20g RMS to simulate road or machinery shocks. Additionally, IP67 sealing provides dust-tight protection and resistance to temporary immersion, along with chemical resistance to oils and solvents common in automotive and industrial operations. Examples include the adoption of flexible harnesses in wiring, which can reduce overall system weight by up to 1 kg per through minimized cabling and connectors. In engine compartments, molded interconnect devices (-MIDs) integrate circuits directly into plastic housings, enduring high temperatures and vibrations while saving space. The automotive flexible electronics market exceeded $2 billion as of 2025, driven by demands for lightweighting and .

Standards and Advancements

Industry Specifications

Industry specifications for flexible electronics establish standardized guidelines to ensure the reliability, , and of these devices across and application contexts. The IPC-6013 outlines and requirements for flexible and rigid-flex printed boards, encompassing visual inspections for surface and quality, electrical tests such as continuity and dielectric withstand, and mechanical assessments including flexural endurance and adhesion. Similarly, the IPC-2223 sectional design for flexible and rigid-flexible printed boards specifies parameters like minimum trace spacing greater than 0.1 mm to prevent electrical shorts and ensure manufacturability. Testing protocols under these specifications rigorously evaluate under mechanical and environmental stresses. Bend testing, as defined in IPC-TM-650 method 2.4.3, subjects flexible boards to repeated 90-degree cycles, requiring endurance beyond 1000 cycles to qualify for high-reliability applications. Thermal shock testing per IPC-TM-650 2.6.7 simulates extreme temperature swings from -55°C to 125°C to assess material integrity, while exposure under IPC-TM-650 2.6.16 or equivalent mandates survival at 85% relative humidity for 1000 hours without degradation. Certifications further enforce safety and environmental compliance. The standard classifies flammability ratings for plastic materials in electronic devices through vertical and horizontal burning tests, ensuring materials achieve V-0 or higher ratings to minimize fire risks in flexible assemblies. compliance restricts hazardous substances like lead, mercury, and certain flame retardants in flexible electronics materials to levels below 0.1% by weight, promoting safer and recyclability. On the international front, the IEC 61249 series defines properties for base materials used in interconnecting structures, including non-halogenated laminates suitable for flexible substrates, with specifications for thickness, flammability, and thermal performance. Post-2020 updates have incorporated stretchable specifications, such as IPC-9204 guidelines for flexibility and stretchability testing in , addressing emerging needs for wearable and deformable devices. These specifications play a crucial role in fostering consistency by providing uniform benchmarks for . For instance, integration with the automotive standard ensures flexible electronics components meet stringent and defect prevention requirements in vehicle manufacturing.

Emerging Technologies and Challenges

Recent advancements in flexible electronics have spotlighted architectures, which mimic brain-like processing for energy-efficient computation. Prototypes of neuromorphic flexible chips incorporating memristors fabricated on (PDMS) substrates emerged in 2023, enabling in bendable forms suitable for wearable devices. These devices demonstrate low-power operation, with endurance exceeding 10^6 cycles under repeated flexing, addressing the rigidity limitations of traditional neuromristors. Quantum dot light-emitting diodes (QD-LEDs) represent another frontier, offering ultra-flexible displays with enhanced efficiency. By 2024, flexible QD-LEDs achieved external quantum efficiencies surpassing 20%, facilitated by perovskite quantum dots integrated into stretchable polymer matrices, which maintain performance under 30% strain. This breakthrough supports rollable screens and conformable lighting, with prototypes showing operational lifetimes over 10,000 hours in curved configurations. Stretchable electronics have advanced through island-bridge designs, where rigid functional islands are interconnected by serpentine or bridges on elastomeric substrates. Developments in 2022 enabled strains greater than 100% while preserving electrical , as seen in gold nanowire bridges that retain resistivity below 10^{-5} Ω·cm under extreme deformation. This architecture underpins electronic skins (e-skins) with densities reaching 10^4 per cm², capable of detecting variations as low as 0.1 for tactile feedback in . Scalability remains a key challenge, particularly in roll-to-roll (R2R) manufacturing, where defect rates must drop below 1% to enable high-volume production. Current R2R processes for organic thin-film transistors yield defect densities around 5-10%, limiting yields for large-area flexible circuits. Sustainability issues compound this, with recycling rates for flexible electronics hovering under 50% due to mixed polymer-metal compositions that complicate separation. Efforts to incorporate biodegradable substrates aim to improve end-of-life management, though full circularity requires advances in solvent-free printing. Integration of for self-diagnostics is an emerging solution to reliability hurdles, with AI algorithms embedded in flexible chips to predict failures from strain-induced cracks. By 2025, models trained on sensor data have demonstrated 95% accuracy in device degradation in wearable prototypes. Post-pandemic supply chain disruptions have accelerated AI-driven , such as generative models optimizing layouts for minimal material use amid raw material shortages. Market projections as of 2025 indicate the flexible electronics sector will reach approximately $350 billion by 2030, driven by these innovations and a of around 25%. Bio-hybrid systems, including organ-on-flex platforms, entered trials in 2024, combining flexible electronics with living tissues for drug testing models that withstand physiological motions. These systems integrate microfluidic channels with stretchable sensors, achieving metrics comparable to rigid lab-on-chip alternatives. As of November 2025, additional advancements include the adoption of bio-based inks for sustainable printing, reducing environmental impact, and updates to IEC 61249 incorporating guidelines for recyclable substrates in stretchable devices.

References

  1. [1]
    Flexible Electronics - an overview | ScienceDirect Topics
    Flexible electronics uses flexible substrates, often plastic films, allowing circuits and components to retain function while being bent.
  2. [2]
    How is flexible electronics advancing neuroscience research? - PMC
    In contrast to its rigid counterpart, flexible electronics uses materials with a lower bending stiffness (thus resulting in greater mechanical compliance), ...
  3. [3]
    A Review of Manufacturing Methods for Flexible Devices and ... - NIH
    Sep 20, 2023 · In this review, we provide a brief overview of the developmental history of flexible devices, systematically summarizing representative preparation methods and ...Missing: definition | Show results with:definition
  4. [4]
    Inorganic semiconducting materials for flexible and stretchable ...
    Sep 26, 2017 · This review summarizes some recent progress in flexible electronics based on inorganic semiconductor nanomaterials, the key associated design strategies and ...
  5. [5]
    The Evolution of Flexible Electronics: From Nature, Beyond ... - NIH
    In general, the nature‐inspired materials in flexible devices can be mainly divided into two aspects: a) Nature‐derived materials with impressive mechanical ...
  6. [6]
  7. [7]
  8. [8]
    The History of PCBs - All Flex Solutions - Printed Circuits
    Jul 21, 2020 · 1944: The United States and Britain work together to develop proximity fuses for use in mines, bombs, and artillery shells during WWII. 1948: ...
  9. [9]
    Materials and noncoplanar mesh designs for integrated circuits with ...
    This article introduces materials and mechanical design strategies for classes of electronic circuits that offer extremely high stretchability.
  10. [10]
    Solar-Cell Rollout | MIT Technology Review
    Jul 1, 2004 · Breakthroughs in nanotech are making it possible to churn out cheap, flexible solar cells by the meter. Soon your cell phone may be powered ...
  11. [11]
  12. [12]
    High-performance green flexible electronics based on ... - Nature
    May 26, 2015 · Here we report high-performance flexible microwave and digital electronics that consume the smallest amount of potentially toxic materials on biobased, ...
  13. [13]
  14. [14]
  15. [15]
    Recent progress in silk fibroin-based flexible electronics - Nature
    May 6, 2021 · Among them, silk fibroin presents greater superiorities in biocompatibility and biodegradability, and moreover, it also possesses a variety of ...
  16. [16]
    ED Copper Vs. RA (Rolled Annealed Copper) in PCB Industry
    Rolled annealed copper has a horizontal grain structure, while Electro Deposited copper is vertical. Both types of copper do not promote flexibility and signal ...
  17. [17]
    RA Copper Foil vs. ED Copper Foil for Flexible Circuits
    Sep 17, 2024 · The two primary types of copper foil available are Rolled Annealed (RA) copper foil and Electrodeposited (ED) copper foil. Each has unique ...
  18. [18]
    RA Copper VS ED Copper: Copper Foil for Flex Circuit Boards
    Jul 13, 2022 · The copper ingot is rolled and annealed repeatedly until it reaches the copper thickness that the flexible PCB wants. Under a 1000x ...
  19. [19]
    Performance Enhancement of Silver Nanowire-Based Transparent ...
    Aug 26, 2022 · KOU et al. found that the AgNWs network still achieved sheet resistance of less than 20 Ω/sq, transmittance of ~87% at 550 nm wavelength, and ...
  20. [20]
    Carbon Nanotube Flexible and Stretchable Electronics - PMC - NIH
    Carbon nanotube is one of the most promising material platforms for flexible and stretchable electronics. Here in this paper, we review the recent progress in ...
  21. [21]
    Printable stretchable interconnects - IOPscience
    Conductive films based on sandwich structures of carbon nanotubes/silver nanowires for stretchable interconnects · Dissolvable tattoo sensors: from science ...Missing: retention | Show results with:retention
  22. [22]
    Full article: Failure mechanisms in flexible electronics
    This review delves into the root causes of device failure, scrutinizing both the fabrication process and the operation environment.
  23. [23]
    Cocoon-mimetic feature-matched interface for flexible system - Nature
    Sep 25, 2025 · In stretchable systems, cyclic strain can induce microcrack formation ... Fractal design concepts for stretchable electronics. Nat. Commun. 5 ...
  24. [24]
    [PDF] A Flexible and Low-Cost Tactile Sensor Produced by Screen ...
    May 21, 2020 · If the resistance equation in. Equation (1) is substituted in the GF expression, Equation (2) is obtained. GF = 1 ε. ( ρ ρ0. (ε + 1).
  25. [25]
    Electromigration time to failure of SnAgCuNi solder joints
    Jul 9, 2009 · A Black-type electromigration time to failure equation is developed to describe the time to failure versus current density and temperature.Missing: flexible | Show results with:flexible
  26. [26]
    Effects of acrylic adhesives property and optimized bonding ...
    Because of these advantages, solder ACFs can replace various connectors in portable and wearable electronics such as FOB (Flex-On-Board) and FOF (Flex-On-Flex) ...
  27. [27]
  28. [28]
    Anisotropic Conductive Film - an overview | ScienceDirect Topics
    ACFs are commonly used for bonding flexible printed circuit boards (PCBs) through thermo-compression bonding, where heat and pressure create electrical ...
  29. [29]
    Biocompatible Multilayered Encapsulation for Organic Light-Emitting ...
    Apr 21, 2025 · In this study, we developed a multilayer thin-film encapsulation consisting of dual inorganic layers and Parylene-C, offering excellent protection and ...
  30. [30]
    Waterproof and ultraflexible organic photovoltaics with improved ...
    Feb 1, 2024 · The encapsulation layer of parylene has a water vapor transmission rate (WVTR) of approximately 90 g/m2 per day, inadequate for fully ...
  31. [31]
    Fluorine-Free Thermoplastic High-Frequency Low Dielectric Poly ...
    (38) Previous studies have demonstrated that increasing the peel strength of polyimide with copper foil is mainly through enhancing the interaction between ...
  32. [32]
    Enhancing flexibility and reliability in wearable OLEDs through ...
    May 28, 2025 · Numerous studies have aimed to improve the mechanical flexibility of thin-film encapsulation, a key obstacle in commercializing wearable ...
  33. [33]
    Self-Healing Polymers for Electronics and Energy Devices
    Oct 19, 2022 · The polymer devices integrated with self-healing ability offer enhanced reliability, durability, and sustainability.
  34. [34]
    Self-healing, high-performance, and high-biobased-content UV ...
    The obtained UV-curable coatings demonstrated good self-healing properties (86–100% at 200 °C for 30 min), high biobased contents (45.4–72.3%), and high ...
  35. [35]
    Interfacial adhesion in flexible electronics: Materials, structures and ...
    Jan 15, 2025 · Bending and stretching of the device can result in intense stress concentration at the interface, and weak adhesion can lead to delamination ...
  36. [36]
    Towards Robust Flexible Electronics: Fabrication Approaches and ...
    Sep 11, 2025 · The scope of this review focuses on advanced fabrication techniques for micro- and nano-scale FE components, including resistors, capacitors, ...
  37. [37]
    Characterisation of aqueous ferric chloride etchants used in ...
    Ferric chloride (FeCl3) is the most commonly used etchant for photochemical machining (PCM) but there is a great variety in the grades of the commercial ...
  38. [38]
    Inkjet printing for flexible and wearable electronics - AIP Publishing
    Dec 16, 2020 · To achieve high-resolution printing, the nozzle inner size can be reduced for lowering the droplet volume (e.g., 20 µm to form the sub-1 pL ...Ii. Inkjet Printing... · Iii. Functional Inks For... · Iv. Flexible And Wearable...
  39. [39]
    Inkjet-Printed Silver Nanowire Ink for Flexible Transparent ... - MDPI
    Under the optimized process and formulation of ink, flexible transparent conductive electrode with a sheet resistance of 32 Ω·sq−1–291 nm·sq−1 and a ...
  40. [40]
    Thick Films | IJ Research, Inc.
    Typical thickness is 12.5-25.4 microns (.0005-.001”). Of course, a thin film requires a vacuum system while thick films are applied via screen printing, ...<|separator|>
  41. [41]
    Linear Electron Beam Assisted Roll-to-Roll in-Vacuum Flexographic ...
    Nov 29, 2021 · Webs of flexible substrates are wound at high speeds, e.g., 10–500 m min−1 from one roll, through processing chambers, back onto another roll.Linear Electron Beam... · 2. Results And Discussion · 4.2. Flexographic Al...
  42. [42]
    [PDF] Roll to Roll (R2R) Processing Technology Assessment
    Feb 13, 2015 · moves past the sputtering source, the deposition rate of material varies. The processing rate. 103 influences the thickness and sequence of ...
  43. [43]
    Laser Direct Structuring (LDS) Technology | KYOCERA AVX
    Laser Direct Structuring (LDS) is a manufacturing process in which a conductive trace can be implemented directly on an injection-molded plastic.
  44. [44]
    3D Printed Electronics - Aerosol Jet Technology - Optomec
    Print thickness from 100 nanometers to 10's of microns. Conformal printing on non-planar and 3D surfaces. Print interconnects and active/passive components.Missing: flexible | Show results with:flexible
  45. [45]
    Advances in design and manufacture of stretchable electronics
    Apr 19, 2022 · R2R screen-printing is another approach for generating large volumes of printed electronics with high yield on flexible or stretchable ...
  46. [46]
    Towards Realizing High-Throughput, Roll-to-Roll Manufacturing of ...
    High-rate roll-to-roll (R2R) tracker systems are utilized for large volume flexible electronic device manufacturing, and the current alignment mechanism ...
  47. [47]
    What Are Flexible Circuits?-Best FPC
    What Are Flexible Circuits? They consist of ... Reduces size and weight – a flex circuit can be up to 70% lighter than a printed circuit board ... Space savings – ...
  48. [48]
    Why flexible printed circuits make devices smarter and lighter
    Devices are easier to carry or wear. Comparison Context, Weight Reduction Achieved ... Flexible pcb technology can cut the weight of electronics by up to 80%.
  49. [49]
    Top Applications of Flexible Printed Circuit Boards in 2025
    Flex PCBs operate at 200°C and 50G forces, with EMI shielding for mission-critical reliability. Key Applications. Aerospace: Boeing 787 navigation systems use ...
  50. [50]
    [PDF] Cost estimates of roll-to-roll production of organic light emitting ...
    Cost estimates of roll-to-roll production of organic light emitting devices for ... achieved, ultimately leading to a polymer cost reduction of 50%. This ...
  51. [51]
    Reducing Assembly Costs with Flexible Circuits - Altium Resources
    Apr 4, 2024 · Weight and space savings: Owing to their lightweight construction and compact form factor, flex circuits enable significant reductions in both ...Understanding Flexible... · Material Costs · Labor Costs
  52. [52]
    Rigid-Flex PCBs Manufacturing Steps & Capabilities | Rigiflex
    However, the same is not chosen for prototyping or small production runs due to the high tooling cost involved. When creating prototype rigid-flex PCBs in small ...Missing: higher | Show results with:higher
  53. [53]
    Bending Strain and Bending Fatigue Lifetime of Flexible Metal ...
    Aug 6, 2019 · ... flexible electronics ... After 1 × 105 cycles of repeated bending of 1% strain amplitude, the ...
  54. [54]
    Consumer Electronics Flex PCB Integration: Advancements and ...
    Medical Wearables: Skin-adherent sensors with flexible electronics. ... Flex materials may have lower heat dissipation than rigid PCBs. 5.4 Assembly Difficulties.
  55. [55]
    Estimating Your flexible PCB cost
    Jun 6, 2024 · However, if the flexible printed circuit boards are later mass-produced in larger quantities, they may cost less than 1 USD or only a few cents.
  56. [56]
    New substrate material for flexible electronics could help combat e ...
    Aug 6, 2024 · Electronic waste is a rapidly growing problem, but this degradable material could allow the recycling of parts from many single-use and ...
  57. [57]
    Top 5 rigid-flex design guidelines - Electronic Systems Design
    Oct 18, 2022 · ... 5 mm between the rigid board and the bend area of the flex circuit. ... The minimum bend radius is usually calculated by using the flex ...
  58. [58]
    [PDF] FCT Design Guide - Flexible Circuit Technologies
    The Ability to Bend and Flex—Perhaps the single biggest reason for using flexible circuits is their ability to bend and flex to fit unique applications. • Ease ...
  59. [59]
    [PDF] Flex Circuit Design Guide - Minco
    Under vibration and/or high acceleration, a flex circuit's ductility and low ... with the added “twist” of flexibility and vibration resistance. The ...
  60. [60]
    A complete Guide to Single-sided Flexible PCBs - PCB manufacturer
    This article will introduce what a single-sided PCB is, focusing on its definition, structure, characteristics, application, price, and how to order a single- ...Missing: flat | Show results with:flat
  61. [61]
    All About Flex: Back-Bared Flexible Circuits - I-Connect007
    Back-bared pad flexible circuits are a distinctive type of single-sided flexible circuit providing some advantages over more standard circuits. In the ...
  62. [62]
    [PDF] Flex Circuits Design Guidelines - Metrigraphics LLC
    Alignment tolerance metal to machined feature. 0.005 mm. ± 0.030 mm. 0.003 mm ... Multi-layer. Substrate thickness. 12.5 microns. On request. On request.
  63. [63]
    [PDF] ZIF Connectors for Flexible Circuits - All Flex Solutions
    Many ZIF connectors have some type of latching mechanism that allows the flex to be inserted and then ultimately clamped down using this latching mechanism ...
  64. [64]
    [PDF] Optimizing Flex and Rigid-Flex Circuit Board Assemblies for High ...
    Jan 9, 2001 · This white paper explores key elements in maximizing flex and rigid-flex circuit boards for high-speed 10 Gbps signals, including ...
  65. [65]
    [PDF] Introduction to the Basics of Flexible Circuits | Minco
    Effective thermal management strategies, such as heat sinks or thermal vias, are necessary to prevent overheating and ensure reliable operation. • Component ...
  66. [66]
    Why Are Flex PCBs Used in Medical Devices and Wearables?
    Dec 15, 2020 · Flex PCBs are used in medical devices and wearables as they offer some great advantages. To begin with, they are smaller, lighter, and more durable.
  67. [67]
    Flexible Printed Circuits in Cameras and Smartphones
    Oct 21, 2025 · - They withstand high temperatures better than standard circuits. - Flexible circuits support multilayer designs for complex applications.
  68. [68]
    Why Polyimide PCB Material for Flex Designs? - Sierra Circuits
    Nov 3, 2022 · Polyimide PCB materials are the perfect choice for FPCs due to their flexibility, and thermal and mechanical stability.Missing: hybrid interface
  69. [69]
    [PDF] Finite Element Modeling of Rigid-Flex PCBs for Dynamic ...
    Rigid-flex PCB is a hybrid of flex- ible circuits laminated to conventionally rigid PCB (see Fig. 1). This technology is widely used for manufacturing mobile ...
  70. [70]
    Mastering Flex-to-Rigid Transitions: A Comprehensive Guide for ...
    Jun 6, 2025 · For example, polyimide has a CTE of around 20 ppm/°C, which pairs well with FR4 at similar values. Conclusion: Building Better Rigid-Flex PCBs.
  71. [71]
    2025 FR4-Polyimide Rigid-Flex PCBs for Medical Devices - LT Circuit
    Oct 16, 2025 · Use low-CTE adhesives (CTE 10–12 ppm/°C) to bond FR4 and polyimide—matches both materials' CTE. b.Apply sequential lamination (bond one ...
  72. [72]
    A Comprehensive Guide to Rigid Flex PCB Fabrication ... - JHYPCB
    Mar 7, 2023 · While rigid-flex PCBs offer several advantages over traditional PCBs, including space-saving design, improved reliability, and simplified ...<|control11|><|separator|>
  73. [73]
    IPC Flex PCB Testing Standards and Guidelines - Sierra Circuits
    Apr 9, 2025 · IPC flex PCB testing standards such as IPC-2223 and IPC-9204 define how manufacturers should evaluate the electrical and mechanical reliability of FPCs.Missing: interlayer | Show results with:interlayer
  74. [74]
    [PDF] IPC-6013D: Qualification and Performance Specification for Flexible ...
    Sep 1, 2017 · 1.1 Statement of Scope This specification covers qualification and performance requirements of flexible printed boards. The flexible printed ...
  75. [75]
    [PDF] Why Rigid Flex PCBs May Not Be Right For Your Application - Minco
    Rigid flex PCBs bring the best of rigid PCB board and flex technologies together. This robust material combination provides the additional protection needed in ...
  76. [76]
    Rigid-Flex PCBs: A Key Technology in Aerospace Electronic Assembly
    One of the primary advantages of rigid-flex PCBs in aerospace applications is their ability to contribute to weight reduction. Traditional rigid PCBs can be ...
  77. [77]
    Rigid Flex PCB vs. Flexible PCB: A Comprehensive Guide to ...
    Oct 14, 2025 · Higher Costs: Rigid flex PCBs are among the most expensive PCB technologies, with costs typically 5-10 times higher than equivalent rigid board ...
  78. [78]
    IPC 6013 Specification for Flexible PCBs - Things to Know
    Dec 14, 2023 · IPC-6013 is a valuable tool for designing and manufacturing flex and rigid-flex PCBs, most importantly the plating requirements and quality ...
  79. [79]
    IPC-6012 or IPC-A-600 | Sierra Circuits
    Jan 11, 2023 · IPC-6012 is the specification that establishes the performance and qualification requirements for the fabrication of rigid boards.
  80. [80]
    Advances in healthcare wearable devices | npj Flexible Electronics
    Apr 12, 2021 · This paper reviews different types of wearable devices currently being used in the healthcare field. It also highlights their efficacy in monitoring different ...
  81. [81]
    Flexible Electronics toward Wearable Sensing - ACS Publications
    Feb 15, 2019 · In this Account, we have reviewed and highlighted the latest scientific and technical advances in flexible electronic devices toward wearable ...Materials and Device Fabrication · Conclusion and Outlook · Biographies
  82. [82]
    Washable and Flexible Screen-Printed Ag/AgCl Electrode on ... - NIH
    Sep 6, 2023 · This work demonstrated a dry electrode for ECG monitoring fabricated by screen printing silver/silver chloride (Ag/AgCl) conductive ink on ordinary polyester ...Missing: patches | Show results with:patches
  83. [83]
    [PDF] Multifunctional Epidermal Electronics Printed Directly Onto the Skin
    Feb 26, 2013 · Here, the strain sensor measures the movement of the chest associated with breathing. The graph of Figure 3 i illustrates the skins. This ...Missing: respiration | Show results with:respiration
  84. [84]
    (PDF) Extended PDMS stiffness range for flexible systems
    Aug 6, 2025 · Polydimethylsiloxane (PDMS) is a very versatile and useful soft polymeric material – Elastic modulus typically ≈1 MPa. This paper ...<|control11|><|separator|>
  85. [85]
    A flexible ECG patch compatible with NFC RF communication - Nature
    Jul 15, 2020 · This paper presents a flexible electrocardiogram (ECG) patch implemented on foil with self-aligned IGZO TFTs, which is capable to acquire the ECG signals.
  86. [86]
    Flexible wearable medical devices: from material innovations and ...
    Aug 22, 2025 · Flexible wearable medical devices drive healthcare transformation via non-invasive, real-time physiological monitoring and personalized ...
  87. [87]
    Scalable Thousand Channel Penetrating Microneedle Arrays ... - NIH
    Feb 25, 2022 · Ultrathin flexible threads can reliably record brain activity across cortical depths and cause minimal scarring within the cortical tissue.
  88. [88]
    Recent advances in flexible noninvasive electrodes for surface ...
    Aug 16, 2023 · By using flexible electrodes with similar mechanical properties, they can conform to the skin's curves, ensuring accurate signal transmission ...
  89. [89]
  90. [90]
    Global flexible electronics in healthcare market to hit USD 43.57B
    Aug 27, 2025 · The Asia Pacific flexible electronics in healthcare market size is exhibited at USD 3.36 billion in 2025 and is projected to be worth around USD ...
  91. [91]
    Alucent Biomedical granted US FDA approval for clinical study
    Aug 2, 2023 · Alucent Biomedical granted US FDA ... flexibility of the vascular wall, while avoiding traditional complications of inserting permanent implants.
  92. [92]
    Advances in flexible organic field-effect transistors and their ... - Nature
    Jan 20, 2022 · Comparing with twisted-nematic liquid crystal displays, polymer-dispersed liquid crystal displays ... bending radius of 5 mm. e Transfer ...Missing: LCDs | Show results with:LCDs
  93. [93]
    World Record White OLED Performance Exceeds 100 lm/W
    UDC has successfully demonstrated a record-breaking white organic light-emitting diode (WOLED) with a power efficacy of 102 lm/W at 1000 cd/m 2.Missing: flexible plastic >10000
  94. [94]
    [PDF] Flexible Organic LED Displays - The Society of Vacuum Coaters
    OLEDs are low voltage devices and have demonstrated effi- ciencies > 40 lm/W [3, 4, 5]. ... display lifetime requirement of > 10,000 hours continuous operation at ...
  95. [95]
    LG Ushers in the TV of Tomorrow with World's First Rollable OLED TV
    The LG rollable OLED TV has a variable form factor, can appear and disappear, and offers Full, Line, and Zero View options.Missing: prototype | Show results with:prototype
  96. [96]
    Flexible micro-LED display and its application in Gbps multi-channel ...
    Dec 26, 2022 · A flexible full-color micro-LED display with high mechanical robustness was fabricated by printing quantum dots (QDs) on a blue micro-LED array using standard ...
  97. [97]
    A flexible and high-performance electrochromic smart window ...
    Interestingly, the switching response time is 1.5 s for bleaching and 2.7 s for coloration, and is 46.8% (for bleaching) and 62% (for coloration) shorter ...
  98. [98]
    Barrier Layers for Flexible Electronics 2015-2025 - IDTechEx
    In order to achieve device lifetimes of tens of thousands of hours, water vapor transmission rates (WVTR) must be 10-6 g/m2/day, and oxygen transmission rates ...Missing: challenges m²/
  99. [99]
    OLED Pixel Shrinkage Dependence with Cathode Influenced by ...
    In OLED displays, pixel shrinkage due to the operating/storage temperature and aging of the devices is causing serious concern. Here, we report an influence ...Missing: strain flexible
  100. [100]
    Samsung Unfolds the Future with a Whole New Mobile Category
    Feb 20, 2019 · Galaxy Fold features the world's first 7.3-inch Infinity Flex Display, which folds into a compact device with a cover display.
  101. [101]
    High energy density, thin-film, rechargeable lithium batteries for ...
    With projected practical energy densities exceeding 300 Wh/kg, low safety risks and great flexibility in battery configuration, the lithium polymer battery ...
  102. [102]
    [PDF] Water-Based Textile Batteries | MITRE Corporation
    ... capacity retention was 82.3% of the initial capacity after 500 cycles. This is ... Peng, “The Recent Advance in Fiber-Shaped. Energy Storage Devices,” Adv.
  103. [103]
    Flexible/Stretchable Supercapacitors with Novel Functionality for ...
    Sep 15, 2020 · Compared to the batteries, supercapacitors have simpler structures, faster charge–discharge time, higher power density of ≈10 kW kg−1, and ...3.3 Shape Memory... · 3.3. 1 Shape Memory... · 3.3. 2 Shape Memory...
  104. [104]
    (PDF) Carbon nanotube-based electrodes for flexible supercapacitors
    Flexible supercapacitors (SCs) have attracted increasing attention as the power supply unit for portable/wearable electronics. Carbon nanotubes (CNTs) are ...
  105. [105]
    Methodologies for Fabricating Flexible Supercapacitors - MDPI
    The assembled SC showed a specific power density of 128.9 kW/kg, specific energy density of 121.5 W h/kg and energy density value of 267.3 μW h/cm2. The ...
  106. [106]
    Advances in organic photovoltaic cells: a comprehensive review of ...
    Apr 19, 2023 · They are thinner than traditional solar cells and have a higher tolerance to temperature changes, with an efficiency range of 10–15%. They use ...
  107. [107]
    Solar Cell Efficiency Formula - Ossila
    PCE represents the conversion ratio of incident power from light energy to usable electrical power. It is determined by three properties of the solar cell, and ...
  108. [108]
    Recent progress in solution-processed flexible organic photovoltaics
    Oct 30, 2022 · Their power conversion efficiency (PCE) has improved from less than 1% to approximately 19% at present. The key driving force for the increase ...
  109. [109]
    Record-efficiency flexible perovskite solar cell and module enabled ...
    Through the porous planar ETL, we achieved a power conversion efficiency (PCE) of 20.7% with a certified efficiency of 19.9% on a flexible substrate, which is ...
  110. [110]
    Organic indoor light harvesters achieving recorded output power ...
    Aug 9, 2025 · ... cm2 in achieving 1 mW output power. This work clarifies the feasibility of collecting photons radiated from indoor thermal light sources ...
  111. [111]
    Study opens route to flexible electronics made from exotic materials
    Oct 8, 2018 · MIT engineers have developed a technique to fabricate ultrathin semiconducting films made from a host of exotic materials other than silicon.Missing: prototype patches<|separator|>
  112. [112]
    Transform Your Automotive Systems with Flexible Circuit ...
    Engine Management: Flex circuits are used in various engine-related applications, such as connecting sensors, actuators, and control units. They can withstand ...Missing: 3D molded compartments
  113. [113]
  114. [114]
    ADT7302 Datasheet and Product Info - Analog Devices
    On-chip temperature sensor that allows an accurate measurement of the ambient temperature. The measurable temperature range is −40°C to +125°C. Supply voltage ...
  115. [115]
    [PDF] EV BATTERY | Flexible Circuit Technologies
    Flexible Circuits are being utilized to connect to the battery cells while integrating to the vehicles electronics and monitors the health of the battery.Missing: systems | Show results with:systems
  116. [116]
    Flexible Printed Circuits in HV Batteries
    Aug 19, 2025 · Flexible Printed Circuits (FPCs) are the hidden nervous system of high-voltage batteries, yet their reliability is often overlooked.
  117. [117]
    Flexible Circuits Increase Range and Safety for Vehicle Batteries
    Jun 1, 2020 · Critical to safely obtaining the longest possible driving range from the battery packs are the battery management systems (BMS). During charging ...Missing: EV | Show results with:EV
  118. [118]
    Flexible wide-range, sensitive three-axis pressure sensor array for ...
    It features a wide detection range (0.1 to 100 kPa), high sensitivity of 0.627 kPa−1 (0.1 to 15 kPa), and short response and recovery times (230 ms and 290 ms).
  119. [119]
    Flexible and Wearable Tactile Sensors for Intelligent Interfaces - PMC
    Tactile sensors allow robots to sense and respond to external stimuli, such as pressure, shear, and temperature, by mimicking human touch. Rigid tactile sensors ...
  120. [120]
    Graphene-Based Flexible Strain Sensor Based on PDMS for ... - NIH
    Aug 28, 2023 · Graphene-based flexible strain sensor films that can be used for strain detection at the joints of steel cord core conveyor belts were successfully fabricated.
  121. [121]
    Vibration Testing Standards for Automotive PCBAs - ALLPCB
    May 20, 2025 · Discover essential vibration testing standards for automotive PCBAs, including ISO 16750-3, MIL-STD-810G, GMW3172, and IEC 60068-2.
  122. [122]
    Sealing Process for IP67 Protection in Automotive Electronics ...
    Jun 27, 2025 · Chemical Resistance: >500h salt spray (ASTM B117). Aging Life: >3000h @125°C (equivalent to 10-year automotive). 3. Structural Design. 3.1 ...
  123. [123]
    Shedding Pounds In Automotive Electronics
    Mar 12, 2019 · “Flexible circuits and printed wiring have the potential to replace these components and reduce system weight dramatically and at the same time ...Missing: kg | Show results with:kg
  124. [124]
    [PDF] Three-Dimensional Molded Interconnect Devices (3D-MID)
    A molded interconnect device (MID) is an injection-molded thermoplastic part with structured circuit traces. This definition still applies, although the term 3D ...
  125. [125]
    Automotive Flexible Electronics Market - Global Forecast to 2025
    To analyze and forecast (2015–2025) the market size, in terms of volume ('000 units) and value (USD million), of the automotive flexible electronics market.
  126. [126]
  127. [127]
    IPC-2223 Standards and Violations for Rigid-Flex - Sierra Circuits
    Sep 8, 2022 · You must adhere to the IPC-2223 standards for rigid-flex design to avoid design violations. ... Minimum trace and space, ≥ .0035”(.089 mm)(rigid).
  128. [128]
  129. [129]
  130. [130]
    [PDF] Understanding UL 94 Certifications and Limitations
    UL 94, the Standard for Tests for Flammability of Plastic Materials for Parts in Devices and Appliances includes small scale tests that evaluate the ...
  131. [131]
    RoHS Directive
    ### RoHS Compliance for Materials in Flexible Electronics
  132. [132]
    IEC 61249-2-44:2016
    May 12, 2016 · IEC 61249-2-44:2016 gives requirements for properties of non-halogenated epoxide non-woven reinforced core/woven E-glass reinforced surface ...
  133. [133]
    IPC-9204 Guideline on Flexibility and Stretchability Testing for...
    Aug 19, 2020 · This IPC-9204 guideline describes flexibility and stretchability testing to evaluate printable electronics for stretchable and wearable ...<|control11|><|separator|>
  134. [134]
    electronics manufacturing - automotive & iatf 16949 - traceability ...
    Jan 17, 2024 · Embracing IATF 16949 Standards for Superior Quality and Traceability in Automotive Electronics. January 17th, 2024. By Cogiscan's Experts.