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具有三维结构的透气防水电子皮肤,用于非重叠模式下的压力和应变传感

Breathable and Waterproof Electronic Skin with Three-Dimensional Architecture for Pressure and Strain Sensing in Nonoverlapping Mode.

作者信息

Lei Ming, Feng Kai, Ding Sen, Wang Mingrui, Dai Ziyi, Liu Ruolin, Gao Yibo, Zhou Yinning, Xu Qingsong, Zhou Bingpu

机构信息

Joint Key Laboratory of the Ministry of Education, Institute of Applied Physics and Materials Engineering, University of Macau, Avenida da Universidade, Taipa, Macau 999078, China.

Department of Electromechanical Engineering, Faculty of Science and Technology, University of Macau, Avenida da Universidade, Taipa, Macau 999078, China.

出版信息

ACS Nano. 2022 Aug 23;16(8):12620-12634. doi: 10.1021/acsnano.2c04188. Epub 2022 Jul 20.

DOI:10.1021/acsnano.2c04188
PMID:35856940
Abstract

Wearable sensors have recently attracted extensive interest not only in the field of healthcare monitoring but also for convenient and intelligent human-machine interactions. However, challenges such as wearable comfort, multiple applicable conditions, and differentiation of mechanical stimuli are yet to be fully addressed. Herein, we developed a breathable and waterproof electronic skin (E-skin) that can perceive pressure/strain with nonoverlapping signals. The synergistic effect from magnetic attraction and nanoscaled aggregation renders the E-skin with microscaled pores for breathability and three-dimensional microcilia for superhydrophobicity. Upon applied pressure, the bending of conductive microcilia enables sufficient contacts for resistance decrease, while the stretching causes increased resistance due to the separation of conductive materials. The optimized E-skin exhibits a high gauge factor of 7.747 for small strain (0-80%) and a detection limit down to 0.04%. The three-dimensional microcilia also exhibit a sensitivity of -0.0198 kPa (0-3 kPa) and a broad detection range up to 200 kPa with robustness. The E-skin can reliably and precisely distinguish kinds of the human joint motions, covering a broad spectrum including bending, stretching, and pressure. With the nonoverlapping readouts, ternary inputs "1", "0", and "-1" could be produced with different stimuli, which expands the command capacity for logic outputs such as effective Morse code and intuitive robotic control. Owing to the rapid response, long-term stability (10 000 cycles), breathability, and superhydrophobicity, we believe that the E-skin can be widely applied as wearable devices from body motion monitoring to human-machine interactions toward a more convenient and intelligent future.

摘要

可穿戴传感器近来不仅在医疗监测领域,而且在便捷智能的人机交互方面都引起了广泛关注。然而,诸如可穿戴舒适性、多种适用条件以及机械刺激的区分等挑战仍有待充分解决。在此,我们开发了一种透气防水的电子皮肤(E-皮肤),它能够以不重叠的信号感知压力/应变。磁吸引力和纳米级聚集的协同效应使E-皮肤具有用于透气的微米级孔隙和用于超疏水性的三维微纤毛。施加压力时,导电微纤毛的弯曲实现了足够的接触以降低电阻,而拉伸则由于导电材料的分离导致电阻增加。优化后的E-皮肤在小应变(0-80%)下具有7.747的高应变系数,检测极限低至0.04%。三维微纤毛在0-3 kPa范围内还表现出-0.0198 kPa的灵敏度以及高达200 kPa的宽检测范围且具有稳健性。该E-皮肤能够可靠且精确地区分各种人体关节运动,涵盖包括弯曲、拉伸和压力在内的广泛范围。通过不重叠的读数,不同刺激可产生三元输入“1”、“0”和“-1”,这扩展了诸如有效摩尔斯电码和直观机器人控制等逻辑输出的指令能力。由于其快速响应、长期稳定性(10000次循环)、透气性和超疏水性,我们相信这种E-皮肤可作为可穿戴设备广泛应用于从身体运动监测到人机交互,迈向更便捷智能的未来。

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