Department of Physics , Supreme Knowledge Foundation Group of Institutions , Hooghly 712139 West Bengal , India.
ACS Appl Mater Interfaces. 2019 May 15;11(19):17501-17512. doi: 10.1021/acsami.9b06452. Epub 2019 May 6.
Smart, self-powered, and wearable e-skin that mimics the pressure sensing property of the human skin is indispensable to boost up cutting edge robotics, artificial intelligence, prosthesis, and health-care monitoring technologies. Here, fabrication of a facile and flexible hybrid piezoelectric e-skin (HPES) with multifunctions of tactile mechanosensing, energy harvesting, self-cleaning, ultraviolet (UV)-protecting, and microwave shielding properties is reported. The principal block of the HPES is an SnO nanosheets@SiO (silica-encapsulated tin oxide nanosheets)/poly(vinylidene fluoride) (PVDF) nanocomposite (SS)-based PES acting as a single unit for simultaneous energy harvesting and tactile mechanosensing. Gentle human finger imparting onto the PES showed outstanding energy conversion efficiency (16.7%) with high power density (550 W·m) and current density (0.40 μA·cm). This device can generate high enough electrical power to directly drive portable electronics like a light-emitting diode (LED) panel (consisting of 85 commercial LEDs) and to charge up capacitors very rapidly. Thin PES mechanosensors demonstrated promising performance for quantitatively detecting static and dynamic pressure stimuli with a high sensitivity of 0.99 V·kPa and a short response time of 1 ms. PES was also integrated to a health-data glove for precisely monitoring and discriminating fine motions of proximal interphalangeal, metacarpophalangeal, and distal interphalangeal joints of a human finger and bending motion of different human fingers. A (4 × 4) sensing matrix of PES was successfully employed to detect the spatial distribution of static pressure stimuli. The sensing matrix can precisely record the shape and size of an object placed onto it. PES was encapsulated with a nanocomposite film for providing self-cleaning and UV and microwave protection capability to the HPES. The hydrophobic SS film wrapping (water drop contact angle ∼85.6°) of the HPES enables the self-cleaning feature and makes HPES resistive against water and dirt. The HPES was integrated with in-house-made robotic hands, and the responses of the sensors due to grabbing of an object were evaluated. This work explores new prospects for UV- and microwave-protective, self-cleaning e-skin for energy harvesting and mechanosensation, which can eventually boost up the self-powered electronics, robotics, real-time health-care monitoring, and artificial intelligence technologies.
智能、自供电、可穿戴的电子皮肤可以模拟人类皮肤的压力感应特性,对于推动尖端机器人技术、人工智能、假肢和医疗保健监测技术至关重要。在这里,我们报告了一种具有触觉机械传感、能量收集、自清洁、紫外线 (UV) 保护和微波屏蔽性能的简便灵活混合压电电子皮肤 (HPES) 的制造。HPES 的主要部分是一种 SnO 纳米片@SiO(二氧化硅封装氧化锡纳米片)/聚偏二氟乙烯 (PVDF)(SS)基 PES,可作为同时进行能量收集和触觉机械传感的单一单元。轻柔的人类手指施加在 PES 上,表现出出色的能量转换效率(16.7%),具有高功率密度(550 W·m)和电流密度(0.40 μA·cm)。该设备可以产生足够高的电力,直接驱动像发光二极管 (LED) 面板(由 85 个商用 LED 组成)这样的便携式电子产品,并迅速为电容器充电。薄的 PES 机械传感器表现出优异的性能,可定量检测静态和动态压力刺激,具有 0.99 V·kPa 的高灵敏度和 1 ms 的短响应时间。PES 还集成到健康数据手套中,用于精确监测和区分人类手指的近端指间关节、掌指关节和远端指间关节以及不同手指的弯曲运动。PES 的 (4×4) 传感矩阵成功用于检测静态压力刺激的空间分布。传感矩阵可以精确记录放置在其上的物体的形状和大小。PES 被封装在纳米复合薄膜中,为 HPES 提供自清洁和 UV 和微波保护能力。HPES 的 SS 疏水薄膜包裹(水滴接触角约为 85.6°)使其具有自清洁功能,并使 HPES 能够抵抗水和污垢。HPES 与内部制造的机器人手集成在一起,并评估了由于抓取物体而导致的传感器响应。这项工作为用于能量收集和机械传感的具有 UV 和微波保护、自清洁功能的电子皮肤探索了新的前景,这最终将推动自供电电子、机器人技术、实时医疗保健监测和人工智能技术的发展。