| Literature DB >> 25490072 |
Jaemin Kim1, Mincheol Lee2, Hyung Joon Shim1, Roozbeh Ghaffari3, Hye Rim Cho4, Donghee Son1, Yei Hwan Jung5, Min Soh1, Changsoon Choi1, Sungmook Jung1, Kon Chu6, Daejong Jeon6, Soon-Tae Lee6, Ji Hoon Kim7, Seung Hong Choi4, Taeghwan Hyeon1, Dae-Hyeong Kim8.
Abstract
Sensory receptors in human skin transmit a wealth of tactile and thermal signals from external environments to the brain. Despite advances in our understanding of mechano- and thermosensation, replication of these unique sensory characteristics in artificial skin and prosthetics remains challenging. Recent efforts to develop smart prosthetics, which exploit rigid and/or semi-flexible pressure, strain and temperature sensors, provide promising routes for sensor-laden bionic systems, but with limited stretchability, detection range and spatio-temporal resolution. Here we demonstrate smart prosthetic skin instrumented with ultrathin, single crystalline silicon nanoribbon strain, pressure and temperature sensor arrays as well as associated humidity sensors, electroresistive heaters and stretchable multi-electrode arrays for nerve stimulation. This collection of stretchable sensors and actuators facilitate highly localized mechanical and thermal skin-like perception in response to external stimuli, thus providing unique opportunities for emerging classes of prostheses and peripheral nervous system interface technologies.Entities:
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Year: 2014 PMID: 25490072 DOI: 10.1038/ncomms6747
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919