| Literature DB >> 34510591 |
Sun Hong Kim1, Geun Woo Baek1, Jiyong Yoon2, Seunghwan Seo2, Jinhong Park3, Donghyo Hahm4, Jun Hyuk Chang4, Duhwan Seong2, Hyunseon Seo5, Seyong Oh2, Kyunghwan Kim1, Heeyoung Jung1, Youngsu Oh6, Hyoung Won Baac2, Batyrbek Alimkhanuly7, Wan Ki Bae4, Seunghyun Lee7, Minbaek Lee3,8, Jeonghun Kwak1, Jin-Hong Park2,4, Donghee Son2,9,10.
Abstract
Conventional stretchable electronics that adopt a wavy design, a neutral mechanical plane, and conformal contact between abiotic and biotic interfaces have exhibited diverse skin-interfaced applications. Despite such remarkable progress, the evolution of intelligent skin prosthetics is challenged by the absence of the monolithic integration of neuromorphic constituents into individual sensing and actuating components. Herein, a bioinspired stretchable sensory-neuromorphic system, comprising an artificial mechanoreceptor, artificial synapse, and epidermal photonic actuator is demonstrated; these three biomimetic functionalities correspond to a stretchable capacitive pressure sensor, a resistive random-access memory, and a quantum dot light-emitting diode, respectively. This system features a rigid-island structure interconnected with a sinter-free printable conductor, which is optimized by controlling the evaporation rate of solvent (≈160% stretchability and ≈18 550 S cm-1 conductivity). Devised design improves both areal density and structural reliability while avoiding the thermal degradation of heat-sensitive stretchable electronic components. Moreover, even in the skin deformation range, the system accurately recognizes various patterned stimuli via an artificial neural network with training/inferencing functions. Therefore, the new bioinspired system is expected to be an important step toward implementing intelligent wearable electronics.Entities:
Keywords: capacitive sensor; golden tortoise beetle; neuromorphic device; quantum dot light-emitting diode; resistive random-access memory; sinter-free printable conductor
Mesh:
Year: 2021 PMID: 34510591 DOI: 10.1002/adma.202104690
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849