Bioinspired Multifunctional Photonic-Electronic Smart Skin for Ultrasensitive Health Monitoring, for Visual and Self-Powered Sensing.

Zhao, Yi; Gao, Wenchao; Dai, Kun; Wang, Shuo; Yuan, Zuqing; Li, Jiannan; Zhai, Wei; Zheng, Guoqiang et al. · Adv Mater · 2021

basic_science · Level V

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Abstract

Smart skin is highly desired to be ultrasensitive and self-powered as the medium of artificial intelligence. Here, an ultrasensitive self-powered mechanoluminescence smart skin (SPMSS) inspired by the luminescence mechanism of cephalopod skin and the ultrasensitive response of spider-slit-organ is developed. Benefitting from the unique strain-dependent microcrack structure design based on Ti<sub>3</sub> C<sub>2</sub> T<sub>x</sub> (MXene)/carbon nanotube synergistic interaction, SPMSS possesses excellent strain sensing performances including ultralow detection limit (0.001% strain), ultrahigh sensitivity (gauge factor, GF = 3.92 × 10<sup>7</sup> ), ultrafast response time (5 ms), and superior durability and stability (>45 000 cycles). Synchronously, SPMSS exhibits tunable and highly sensitive mechanoluminescence (ML) features under stretching. A relationship between ML features, strain sensing performances, and the deformation has been established successfully. Importantly, the SPMSS demonstrates excellent properties as triboelectric nanogenerator (4 × 4 cm<sup>2</sup> ), including ultrahigh triboelectric output (open-circuit voltage V<sub>OC</sub>  = 540 V, short-circuit current I<sub>SC</sub>  = 42 µA, short-circuit charge Q<sub>SC</sub>  = 317 nC) and power density (7.42 W m<sup>-2</sup> ), endowing the smart skin with reliable power source supply and self-powered sensing ability. This bioinspired smart skin exhibits multifunctional applications in health monitoring, visual sensing, and self-powered sensing, showing great potential in artificial intelligence.

Medical subject headings