Stretchable organic optoelectronic sensorimotor synapse
Author(s) -
Yeongjun Lee,
Jin Young Oh,
Wentao Xu,
Onnuri Kim,
Taeho Roy Kim,
Jiheong Kang,
Yeongin Kim,
Donghee Son,
Jeffrey B.H. Tok,
Moon Jeong Park,
Zhenan Bao,
TaeWoo Lee
Publication year - 2018
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aat7387
Subject(s) - synapse , electronics , computer science , materials science , robotics , emulation , artificial intelligence , nanotechnology , neuroscience , robot , electrical engineering , biology , engineering , economic growth , economics
Emulation of human sensory and motor functions becomes a core technology in bioinspired electronics for next-generation electronic prosthetics and neurologically inspired robotics. An electronic synapse functionalized with an artificial sensory receptor and an artificial motor unit can be a fundamental element of bioinspired soft electronics. Here, we report an organic optoelectronic sensorimotor synapse that uses an organic optoelectronic synapse and a neuromuscular system based on a stretchable organic nanowire synaptic transistor (s-ONWST). The voltage pulses of a self-powered photodetector triggered by optical signals drive the s-ONWST, and resultant informative synaptic outputs are used not only for optical wireless communication of human-machine interfaces but also for light-interactive actuation of an artificial muscle actuator in the same way that a biological muscle fiber contracts. Our organic optoelectronic sensorimotor synapse suggests a promising strategy toward developing bioinspired soft electronics, neurologically inspired robotics, and electronic prostheses.
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