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通过磁定向导电复合材料的并联电路实现的灵活超高灵敏触觉传感器。

A Flexible and Ultra-Highly Sensitive Tactile Sensor through a Parallel Circuit by a Magnetic Aligned Conductive Composite.

机构信息

CAS Center for Excellence in Nanoscience, Beijing Key Laboratory of Micro-Nano Energy and Sensor, Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing 100083, People's Republic of China.

School of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing 100049, People's Republic of China.

出版信息

ACS Nano. 2022 Jan 25;16(1):746-754. doi: 10.1021/acsnano.1c08273. Epub 2022 Jan 5.

Abstract

The development of flexible electronic skins with high performance and multifunctional sensing capabilities is of great significance for applications ranging from healthcare monitoring to artificial intelligence. To mimic and surpass the high-gauge-factor sensing properties of human skin, structure design and appropriate material selection of sensors are both essentially required. Here, we present an efficient, low-cost fabrication strategy to construct an ultra-highly sensitive, flexible pressure sensor by embedding the aligned nickel-coated carbon fibers (NICFs) in a polydimethylsiloxane (PDMS) substrate. Our design substantially contributes to ultrahigh sensitivity through the parallel circuit formed by aligned NICFs as well as surface spinosum microstructure molded by sandpaper. As a result, the sensor exhibits excellent sensitivity (15 525 kPa), a fast response time (30 ms), and good stability over 3000 loading-unloading cycles. Furthermore, these superior sensing properties trigger applications in water quality and wave monitoring in conjunction with mechanical flexibility and robustness. As a precedent for adjusting the sensitivities of the sensor, the NICFs/PDMS sensor provides a promising method for multiscenario healthcare monitoring, multiscale pressure spatial distribution, and human-machine interfacing.

摘要

具有高性能和多功能传感能力的柔性电子皮肤的发展对于从医疗保健监测到人工智能的各种应用都具有重要意义。为了模拟和超越人体皮肤的高计量因子传感性能,传感器的结构设计和适当的材料选择都是必不可少的。在这里,我们提出了一种高效、低成本的制造策略,通过在聚二甲基硅氧烷(PDMS)基底中嵌入排列的镀镍碳纤维(NICFs)来构建超灵敏、灵活的压力传感器。我们的设计通过平行的 NICFs 以及由砂纸成型的表面棘突微结构极大地提高了超灵敏度。因此,该传感器表现出优异的灵敏度(15525kPa)、快速的响应时间(30ms)以及在 3000 次加载-卸载循环下的良好稳定性。此外,这些卓越的传感性能与机械灵活性和鲁棒性相结合,在水质和波浪监测方面具有应用潜力。作为调整传感器灵敏度的先例,NICFs/PDMS 传感器为多场景医疗保健监测、多尺度压力空间分布和人机交互提供了一种有前景的方法。

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