| Literature DB >> 34199399 |
Marco Cinquino1,2, Carmela Tania Prontera2, Marco Pugliese1,2, Roberto Giannuzzi1,2, Daniela Taurino1, Giuseppe Gigli1,2, Vincenzo Maiorano2.
Abstract
E-textiles represent an emerging technology aiming toward the development of fabric with augmented functionalities, enabling the integration of displays, sensors, and other electronic comEntities:
Keywords: alternating current electroluminescent devices; light electrochemical cells; light emitting diodes; light-emitting e-textiles; polymeric optical fibers
Year: 2021 PMID: 34199399 PMCID: PMC8229797 DOI: 10.3390/mi12060652
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1Device architecture and working principle of (a) ACEL device; (b) LED device; (c) OLED device; (d) LEC device; (e) Schematic representation of distal-end-emitting optical fibers and side-emitting optical fibers by using the microperforation and the macrobending approaches.
Deposition techniques, structure, and performances of ACEL devices on a single fiber.
| Year | Deposition Techniques | Device Structure | Performances | Ref. |
|---|---|---|---|---|
| 2012 | Automatic dispensing and curing process | Silver-coated yarn/DuPont dielectric paste/DuPont phosphor ink/silver-coated yarn | 1.3 cd/m2 at 370 V and 2 kHz | [ |
| 2017 | Slot-die coating | Silver-coated yarn/DuPont dielectric paste/DuPont phosphor ink/silver-coated yarn | 50 cd/m2 | [ |
| 2017 | Slot-die coating | Silver-coated yarn/DuPont dielectric paste/DuPont phosphor ink/DuPont conductive paste | n.a. | [ |
| 2017 | Dip coating | PET fiber/AgNWs/silicone/phosphor/AgNWs/silicone | 202 cd/m2 at 195 V and 2 kHz | [ |
| 2018 | Slot-die coating | Silver-coated yarn/DuPont dielectric paste/DuPont phosphor ink/DuPont conductive paste | 50 cd/m2 at 100 V and 20 kHz | [ |
| 2018 | Dip coating | PDMS fiber/AgNWs/phosphor:PDMS/AgNWs | 100 cd/m2 at 400 V and 1 kHz | [ |
| 2018 | 3D printing and automatic wrapping | Elastic polymer fiber/Aligned CNT sheet/Silicone elastomer/Light-emitting layer/Aligned CNT sheet | 15 cd/m2 at 6.4 V/μm and 1.5 kHz | [ |
| 2018 | Extrusion | Two inner hydrogel electrodes + ZnS:silicone elastomer | 250 cd/m2 at 8 V/μm and 1.5 Hz | [ |
| 2018 | Spin coating | Graphene/ZnS:Cu/BaTiO3/Ag | n.a. | [ |
| 2019 | Dip coating | PVA fiber/AgNWs/ZnS:Cu+PVP/AgNWs | 100 cd/m2 at | [ |
Deposition techniques, structure, and performances of ACEL devices on fabric.
| Year | Deposition Techniques | Device Structure | Performances | Ref. |
|---|---|---|---|---|
| 2011 | Inkjet printing | PEDOT:PSS/Phosphor:epoxy resin/aluminium | 44 cd/m2 at 400 V and 0.4 kHz | [ |
| 2012 | Inkjet printing + nozzle extrusion | CNT and/or PEDOT:PSS/dielectric layer/phosphor layer/aluminium | 70 cd/m2 at 200 V and 3.5 kHz | [ |
| 2014 | Screen printing | Silver/dielectric layer/luminophore/CNT-GNP electrode | n.a. | [ |
| 2016 | Dispenser printing | FabInks bottom electrode/FabInks dielectric/FabInks phoshor/ FabInks transparent tonductor | 300 cd/m2 at 370 V and 1 kHz | [ |
| 2017 | Chemical deposition + casting | Polypirrole/ ZnS:Silicone elastomer/hydrogel film | 350 cd/m2 at 5 V/μm and 2 kHz | [ |
| 2018 | Solution-based metallization + spin coating | Gold-coated textile/BaTiO3+PDMS/ZnS:Cu+PDMS/PEDOT:PSS | n.a. | [ |
| 2019 | Embedding of fibers into phosphor:PDMS composite | Ag-coated fibers/ZnS phosphor+PDMS | 35 cd/m2 at 1.8 V/μm and 2 kHz | [ |
| 2019 | Screen printing | Graphene-based electrode/BaTiO3/ZnS:Cu/BaTiO3/CNT or ATO transparent electrode | 300 cd/m2 at 160 V and 2 kHz | [ |
| 2020 | Solution-based metallization + spin coating + lamination | Gold-coated textile/ZnS:Cu+Ecoflex/gold-coated textile | n.a. | [ |
Figure 2(a) Scheme of the fabrication process of a stretchable ACEL fiber. (b) Picture of a textile-fiber-embedded ACEL device, optical and scanning electron microscope cross-sectional images, and picture of the ACEL device under 500 V at 1 KHz. (c) Device structure based on ZnS:Cu/Ecoflex composite sandwiched between two gold-coated ultrasheer fabric electrodes and photograph of the light-emitting textile. (d) Graphene-based ACEL device. (e) Picture of a fiber-based ACEL device wrapped around a glass bar and scheme of the device structure. (a) Reproduced under the terms of the CC BY 4.0 license [27]. (b) Reproduced with permission [31]. Copyright 2020, Elsevier. (c) Reproduced with permission [32]. Copyright 2020, Elsevier. (d) Reproduced under the terms of the CC BY 4.0 license [30]. (e) Reproduced with permission [28]. Copyright 2018, Royal Society of Chemistry.
Figure 3(a) Schematic illustration of LED integration with textile and picture of a textile LED display. (b) Representation of wireless-powered wearable μLEDs with a scheme of the circuit. (c) Scheme of the E-yarns structure with an LED and related picture. (a) Reproduced with permission [56]. Copyright 2013, NC State University. (b) Reproduced with permission [57]. Copyright 2018, Elsevier. (c) Reproduced under the terms of the CC BY 4.0 license [58].
Structure and performance of OLEDs on fiber.
| Year | Deposition Techniques | Device Structure | Performances | Ref. |
|---|---|---|---|---|
| 2007 | Thermal evaporation | Al/Ni/CuPc/NPD/Alq3/LiF/Al | ηEQE 0.07 ÷ 0.15% at 0 ÷ 10 V | [ |
| 2015 | Dip coating + thermal evaporation | PEDOT:PSS/Super Yellow/LiF/Al | 1458.8 cd/m2at 10 V | [ |
| 2018 | Dip coating + thermal evaporation | PEDOT:PSS/ZnO NPs/PEI/Super Yellow/MoO3/Al | 11,780 cd/m2 at 10 V 11.1 cd/A at 5 V | [ |
| 2018 | Thermal evaporation | ITO/2-TNATA/NPB/Alq3/LiF/Al | 6300 cd/m2at 13 V 11 cd/A at 12 V | [ |
| 2020 | Spin coating + thermal evaporation | Hybrid fiber TCEs/PEDOT:PSS/PVK:TPD:PBD:Ir(mppy)3/TPBi/LiF/Al | 4200 cd/m2 at 12 V, 39.6 cd/A and 11.3% of EQE at 7 V | [ |
| 2020 | Dip coating + thermal evaporation | PEDOT:PSS PH1000/PEDOT:PSS AI4083/TFB/QDs/AlZnO/Al | 340 cd/m2 at 13 V for CdS/ZnS (blue QLED) | [ |
| 2020 | Thermal evaporation | ITO/HAT-CN/TAPC/TCTA:Ir(ppy)2acac/B3PYMPM/Liq/Al | 2900 cd/m2 at 5 V, | [ |
| 2021 | Dip coating + thermal evaporation | PEDOT:PSS/ZnO NPs/PEI/PVK:26DCzppy:Ir(ppy)3 (30:30:1 weight ratio)/TCTA/MoO3/Al—green | 11,482 cd/m2 at 6.5 V | [ |
| PEDOT:PSS/ZnO NPs/PEI/PVK:TPBi:Hex-Ir(phq)2acac (25:25:1 weight ratio)/TCTA/MoO3/Al—red | 4462 cd/m2 at 7 V 16.3 cd/A at 4.5 V for the red OLED | |||
| PEDOT:PSS/ZnO NPs/PEI/PVK:26DCzppy:Ir(Fppy)3 (30:30:1 weight ratio)/TCTA/MoO3/Al—blue | 1199 cd/m2at 6 V 16.9 cd/A at 4 V for the blue OLED |
Structure and performance of OLEDs on textiles.
| Year | Deposition Techniques | Device Structure | Performances | Ref. |
|---|---|---|---|---|
| 2013 | Thermal evaporation | Ag/WO3/NPB/Alq3/Liq/Al/Ag/NPB | 7000 cd/m2 and 8 cd/A at 6 V | [ |
| 2014 | Thermal evaporation | Al/Liq/Alq3/NPB/WO3/Ag | 2000 cd/m2at 7.5 V | [ |
| 2015 | Spin coating + thermal evaporation | PEDOT:PSS/Super Yellow(PDY-132)/LiF/Al | 5000 cd/m2 at 6 V. 9.72 cd/A at 5.5 V7.17 lm/W at 4 V. | [ |
| 2015 | thermal evaporation | Ag/HAT-CN/NPB/TAPC/CBP: Ir(ppy)3/TPBi/LiF/Al | 64,459 cd/m2 at 12 V | [ |
| 2016 | Spin coating + thermal evaporation | ITO/PEDOT:PSS/emission polymer(SPW-111, PDY-132, and SPR-001)/LiF/Al | 2781cd/m2 at 13 V | [ |
| 2016 | Thermal evaporation | Al/Liq/Alq3/NPB/WO3/Ag | 1500 cd/m2 and 5 cd/A at 8.5 V | [ |
| 2017 | Thermal evaporation | Ag/MoO3/NPB/mCP: Ir(ppy)3(6% wt)/TPBi/Ca/Ag | 45,545 cd/m2 at | [ |
| 2017 | Thermal evaporation | Al/Liq/TPBi/CBP: Ir(ppy)3(8% wt)/NPB/MoO3/Ag | 93,000 cd/m2at 14 V 49 cd/A at 12 V | [ |
| 2018 | Spin coating + thermal evaporation | Ag/PEDOT:PSS/Super Yellow/Ca/Ag | n.a. | [ |
| 2019 | Thermal evaporation | Al/Liq/Bebq2:Ir(piq)3/NPB/MoO3/Ag | 1660 cd/m2 and | [ |
| 2019 | Thermal evaporation | Ag/HAT-CN/NPB/TAPC/CBP: Ir(ppy)3/TPBi/LiF/Al/Ag | 23,673 cd/m2at 7 V (bare OLED)16,636 cd/m2 at 7 V (encapsulated OLED) | [ |
| 2020 | Thermal evaporation | Ag/MoO3/NPB/CBP: Ir(bt)2(acac)/TPBi/Ca/Ag | 15,000 cd/m2at 8 V 78 cd/A at 6 V. | [ |
| 2020 | Thermal evaporation | Au/MoO3/NPB/mCP: Ir(ppy)3(6% wt)/TPBi/Ca/Ag | 17,900 cd/m2 at 10 V | [ |
| 2020 | Thermal evaporation + spin coating | NPB/Ag/MoO3/NPB/Alq3/Liq/Al | About 7000 cd/m2 at 5.5 V (OLED); | [ |
Figure 4(a) Scheme of OLED fabrication on fibers. (b) Integration of a fiber-based OLED with a textile. (c) Device architecture of the quantum-dot light-emitting diode and pictures of the device in working conditions. (d) Fabrication process of the fiber-shaped OLED and device pictures. (a) Reproduced with permission [70]. Copyright 2018, American Chemical Society. (b) Reproduced with permission [70]. Copyright 2018, American Chemical Society. (c) Reproduced with permission [73]. Copyright 2020, American Chemical Society. (d) Reproduced with permission [71]. Copyright 2018, Royal Society of Chemistry.
Figure 5(a) Schematic illustration of the fabric-based OLED with planarization and encapsulation multilayer. (b) Fabric planarization process by using a polymer film and a glass substrate, SEM picture of the fabric and AFM image of the planarized fabric, photographs of the OLED device on fabric at different driving voltages and under bending conditions. (c) Scheme of the fabrication process of a textile/PLED/textile structure. (d) Representation of a planarization process based on a replicating method with a sacrificial layer and pictures of OLEDs fabricated on different kinds of planarized textiles. (a) Reproduced under the terms of the CC BY 4.0 license [81]. (b) Reproduced with permission [83]. Copyright 2020, Elsevier. (c) Reproduced with permission [84]. Copyright 2016, Elsevier. (d) Reproduced under the terms of the CC BY 4.0 license [82].
Figure 6(a) Architecture of an electroluminescent fiber based on an ionic transition-metal complex (iTMCs) and scheme of the co-electrospinning setup. (b) Scheme of the fabrication process of a fiber-based-LEC. (a) Reproduced with permission [93]. Copyright 2012, American Chemical Society. (b) Reproduced with permission [95]. Copyright 2015, Royal Society of Chemistry.
Figure 7(a) Scheme of the PD/LED yarn system for heart rate detection and picture of the comparison between the e-yarn system and a commercial one. (b) Schematic representation of a textile-based sensor with two photodiode strips, two LED strips, and a bus bar strip, for near-infrared spectroscopy. (c) Picture of a photodynamic therapy session by using a POF-based light-emitting textile at 635 nm. (d) Carnival costume integrated with LEDs. (a) Reproduced under the terms of the CC BY 4.0 license [121]. (b) Reproduced with permission [120]. Copyright 2013, The Optical Society. (c) Reproduced under the terms of the CC BY 4.0 license [137]. (d) Reproduced under the terms of the CC BY 4.0 license [116].