Zheng Bowen, Guo Ruisheng, Dou Xiaoqiang, Fu Yueqing, Yang Bingjun, Liu Xuqing, Zhou Feng
State Key Laboratory of Solidification Processing, Center of Advanced Lubrication and Seal Materials, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an, 710072, People's Republic of China.
Research Center of Resource Chemistry and Energy Materials, State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese of Academy of Sciences, Lanzhou, 730000, People's Republic of China.
Nanomicro Lett. 2024 Aug 13;16(1):267. doi: 10.1007/s40820-024-01488-0.
Flexible and wearable pressure sensors hold immense promise for health monitoring, covering disease detection and postoperative rehabilitation. Developing pressure sensors with high sensitivity, wide detection range, and cost-effectiveness is paramount. By leveraging paper for its sustainability, biocompatibility, and inherent porous structure, herein, a solution-processed all-paper resistive pressure sensor is designed with outstanding performance. A ternary composite paste, comprising a compressible 3D carbon skeleton, conductive polymer poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate), and cohesive carbon nanotubes, is blade-coated on paper and naturally dried to form the porous composite electrode with hierachical micro- and nano-structured surface. Combined with screen-printed Cu electrodes in submillimeter finger widths on rough paper, this creates a multiscale hierarchical contact interface between electrodes, significantly enhancing sensitivity (1014 kPa) and expanding the detection range (up to 300 kPa) of as-resulted all-paper pressure sensor with low detection limit and power consumption. Its versatility ranges from subtle wrist pulses, robust finger taps, to large-area spatial force detection, highlighting its intricate submillimeter-micrometer-nanometer hierarchical interface and nanometer porosity in the composite electrode. Ultimately, this all-paper resistive pressure sensor, with its superior sensing capabilities, large-scale fabrication potential, and cost-effectiveness, paves the way for next-generation wearable electronics, ushering in an era of advanced, sustainable technological solutions.
柔性可穿戴压力传感器在健康监测领域有着巨大的应用前景,涵盖疾病检测和术后康复。开发具有高灵敏度、宽检测范围和成本效益的压力传感器至关重要。本文利用纸张的可持续性、生物相容性和固有的多孔结构,设计了一种通过溶液处理的全纸电阻式压力传感器,其性能优异。一种三元复合浆料,由可压缩的三维碳骨架、导电聚合物聚(3,4-乙撑二氧噻吩):聚(苯乙烯磺酸盐)和粘性碳纳米管组成,通过刮刀涂布在纸张上并自然干燥,形成具有分级微纳结构表面的多孔复合电极。将其与在粗糙纸张上以亚毫米手指宽度丝网印刷的铜电极相结合,在电极之间创建了一个多尺度分级接触界面,显著提高了灵敏度(1014 kPa),并扩大了所得全纸压力传感器的检测范围(高达300 kPa),同时具有低检测限和低功耗。其通用性涵盖了微妙的手腕脉搏、有力的手指敲击以及大面积空间力检测,突出了其复合电极中复杂的亚毫米-微米-纳米分级界面和纳米孔隙率。最终,这种全纸电阻式压力传感器凭借其卓越的传感能力、大规模制造潜力和成本效益,为下一代可穿戴电子产品铺平了道路,开启了一个先进、可持续技术解决方案的时代。