Conductive Fiber-Based Ultrasensitive Textile Pressure Sensor for Wearable Electronics
Conductive Fiber-Based Ultrasensitive Textile Pressure Sensor for Wearable Electronics
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DOI:
10.1002/adma.201500009
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发表时间:
2015-04-17
影响因子:
29.4
通讯作者:
Lee, Taeyoon
中科院分区:
文献类型:
--
作者:
Lee, Jaehong;Kwon, Hyukho;Lee, Taeyoon
DOI: 10.1002/adma. 201500009 essential.[26] To ensure the conductive fibers, various methods such as dip-coating process of carbon-based materials,[27, 28] electro-[29] and electroless-plating process [30, 31] have been extensively investigated. However, the aforementioned approaches are limited in their ability to obtain a superior electrical performance and stability at the same time;[8, 32] metal-based conductive fibers obtained from the electro-and electroless-plating process have excellent electrical properties and poor stability, and vice versa in the case of carbon material-based conductive fibers obtained from the dip-coating process. Recently, Lee et al. demonstrated an efficient chemical solution process, which uses the chemical reduction of aluminium (Al) metal precursor composites on the fibers, forming Al nanoparticles with connections between them.[26] The chemical solution process can be useful to obtain conductive fibers with high electrical conductivity and endurance due to the connection of metal nanoparticles; however, the poor deposition efficiency of metal nanoparticles on specific polymeric fibers without surface groups able to bind metal precursors should be improved.[33] In this research, we describe a textile-based pressure sensor with unprecedented sensitivity, excellent durability, a fast response, and a relaxation time based on highly conductive fibers coated with dielectric rubber materials. The conductive fibers were fabricated by coating poly (styrene-block-butadienstyrene)(SBS) polymer on the surface of poly (p-phenylene terephthalamide)(Kevlar) fiber, followed by converting a huge amount of silver (Ag) ions into Ag nanoparticles directly in the SBS polymer. The obtained conductive fibers have an excellent electrical property of 0.15 Ω cm–1 owing to the dense electrical connection of the Ag nanoparticles and the good stability against repeated external deformations of 3 000 bending tests. By coating poly (dimethylsiloxane)(PDMS) as dielectric layers on the surface of the conductive fibers and stacking the two PDMS-coated fibers perpendicularly to each other, a capacitive type of textile pressure sensor was successfully fabricated. The obtained pressure sensor exhibited high sensitivity (0.21 kPa− 1), very fast response times in the millisecond range and high stability over more than 10 000 cycles. The textile-based pressure sensor could be pixelated to matrix-type pressure sensor in the form of fabrics by using a weaving method and imbedded into gloves and clothes, which were applied to control machines wirelessly as human–machine interfaces. Figure 1a presents a schematic illustration of the fabrication procedure of conductive fibers. The procedure involves three main steps:(i) coating of SBS on the surface of Kevlar fiber,(ii) absorption of Ag precursors into the SBS layer, and (iii) reduction of the Ag precursors to form Ag nanoparticles in the SBS layers. The SBS polymer could be uniformly coated onElectronic textiles (e-textiles) where various electronic elements such as sensors,[1, 2] energy harvesting devices,[3] fieldeffect transistors,[4, 5] and antennas [6] are integrated into fabrics have attracted considerable interest with the development of advanced flexible and wearable devices.[7, 8] A textile-based pressure sensor, in particular, has been widely explored for a variety of applications to include caring for the elderly,[9] diagnostics,[10] monitoring patients,[8] and human motion detection [11] due to their integrability into clothes and beds. To realize the high-performance textile-based pressure sensor, various operation types of pressure sensors such as capacitive,[12, 13] piezoresistive,[14–17] piezoelectric,[18, 19 …