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Mixed-dimensional MXene-hydrogel heterostructures for electronic skin sensors with ultrabroad working range.


ABSTRACT: Skin-mountable microelectronics are garnering substantial interest for various promising applications including human-machine interfaces, biointegrated devices, and personalized medicine. However, it remains a critical challenge to develop e-skins to mimic the human somatosensory system in full working range. Here, we present a multifunctional e-skin system with a heterostructured configuration that couples vinyl-hybrid-silica nanoparticle (VSNP)-modified polyacrylamide (PAM) hydrogel with two-dimensional (2D) MXene through nano-bridging layers of polypyrrole nanowires (PpyNWs) at the interfaces, featuring high toughness and low hysteresis, in tandem with controlled crack generation and distribution. The multidimensional configurations endow the e-skin with an extraordinary working range (2800%), ultrafast responsiveness (90 ms) and resilience (240 ms), good linearity (800%), tunable sensing mechanisms, and excellent reproducibility. In parallel, this e-skin platform is capable of detecting, quantifying, and remotely monitoring stretching motions in multiple dimensions, tactile pressure, proximity sensing, and variations in temperature and light, establishing a promising platform for next-generation smart flexible electronics.

SUBMITTER: Cai Y 

PROVIDER: S-EPMC7695469 | biostudies-literature | 2020 Nov

REPOSITORIES: biostudies-literature

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Mixed-dimensional MXene-hydrogel heterostructures for electronic skin sensors with ultrabroad working range.

Cai Yichen Y   Shen Jie J   Yang Chi-Wen CW   Wan Yi Y   Tang Hao-Ling HL   Aljarb Areej A AA   Chen Cailing C   Fu Jui-Han JH   Wei Xuan X   Huang Kuo-Wei KW   Han Yu Y   Jonas Steven J SJ   Dong Xiaochen X   Tung Vincent V  

Science advances 20201127 48


Skin-mountable microelectronics are garnering substantial interest for various promising applications including human-machine interfaces, biointegrated devices, and personalized medicine. However, it remains a critical challenge to develop e-skins to mimic the human somatosensory system in full working range. Here, we present a multifunctional e-skin system with a heterostructured configuration that couples vinyl-hybrid-silica nanoparticle (VSNP)-modified polyacrylamide (PAM) hydrogel with two-d  ...[more]

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