Park Taesung, Woo Ho Kun, Jung Byung Ku, Park Byeonghak, Bang Junsung, Kim Woosik, Jeon Sanghyun, Ahn Junhyuk, Lee Yunheum, Lee Yong Min, Kim Tae-Il, Oh Soong Ju
Department of Materials Science and Engineering, Korea University, 145 Anam-ro Seongbuk-gu, Seoul, 02841, Republic of Korea.
School of Chemical Engineering, Sungkyunkwan University, Suwon, 16419, Republic of Korea.
ACS Nano. 2021 May 25;15(5):8120-8129. doi: 10.1021/acsnano.0c09835. Epub 2021 Apr 1.
In this study, non-temperature interference strain gauge sensors, which are only sensitive to strain but not temperature, are developed by engineering the properties and structure from a material perspective. The environmental interference from temperature fluctuations is successfully eliminated by controlling the charge transport in nanoparticles with thermally expandable polymer substrates. Notably, the negative temperature coefficient of resistance (TCR), which originates from the hopping transport in nanoparticle arrays, is compensated by the positive TCR of the effective surface thermal expansion with anchoring effects. This strategy successfully controls the TCR from negative to positive. A near-zero TCR (NZTCR), less than 1.0 × 10 K, is achieved through precisely controlled expansion. Various characterization methods and finite element and transport simulations are conducted to investigate the correlated electrical, mechanical, and thermal properties of the materials and elucidate the compensated NZTCR mechanism. With this strategy, an all-solution-processed, transparent, highly sensitive, and noninterference strain sensor is fabricated with a gauge factor higher than 5000 at 1% strain, as demonstrated by pulse and motion sensing, as well as the noninterference property under variable-temperature conditions. It is envisaged that the sensor developed herein is applicable to multifunctional wearable sensors or e-skins for artificial skin or robots.
在本研究中,通过从材料角度设计特性和结构,开发出了仅对应变敏感而对温度不敏感的非温度干扰应变片式传感器。利用具有热膨胀性的聚合物基底控制纳米颗粒中的电荷传输,成功消除了温度波动带来的环境干扰。值得注意的是,源于纳米颗粒阵列中跳跃传导的负电阻温度系数(TCR),被具有锚固效应的有效表面热膨胀的正TCR所补偿。该策略成功地将TCR从负变为正。通过精确控制膨胀,实现了小于1.0×10 K的近零TCR(NZTCR)。采用各种表征方法以及有限元与传导模拟,研究了材料相关的电学、力学和热学性能,并阐明了补偿型近零TCR的机制。通过该策略,制造出了一种全溶液处理、透明、高灵敏度且无干扰的应变传感器,在1%应变下的应变片系数高于5000,脉冲和运动传感以及变温条件下的无干扰特性均证明了这一点。预计本文所开发的传感器适用于多功能可穿戴传感器或用于人造皮肤或机器人的电子皮肤。