Hydrogel bioelectronics

Bioelectronic interfacing with the human body including electrical stimulation and recording of neural activities is the basis of the rapidly growing field of neural science and engineering, diagnostics, therapy, and wearable and implantable devices. Owing to intrinsic dissimilarities between soft,...

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Bibliographic Details
Main Authors: Yuk, Hyunwoo (Contributor), Lu, Baoyang (Contributor), Zhao, Xuanhe (Contributor)
Other Authors: Massachusetts Institute of Technology. Department of Mechanical Engineering (Contributor)
Format: Article
Language:English
Published: The Royal Society of Chemistry, 2019-02-04T15:21:40Z.
Subjects:
Online Access:Get fulltext
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100 1 0 |a Yuk, Hyunwoo  |e author 
100 1 0 |a Massachusetts Institute of Technology. Department of Mechanical Engineering  |e contributor 
100 1 0 |a Yuk, Hyunwoo  |e contributor 
100 1 0 |a Lu, Baoyang  |e contributor 
100 1 0 |a Zhao, Xuanhe  |e contributor 
700 1 0 |a Lu, Baoyang  |e author 
700 1 0 |a Zhao, Xuanhe  |e author 
245 0 0 |a Hydrogel bioelectronics 
260 |b The Royal Society of Chemistry,   |c 2019-02-04T15:21:40Z. 
856 |z Get fulltext  |u http://hdl.handle.net/1721.1/120165 
520 |a Bioelectronic interfacing with the human body including electrical stimulation and recording of neural activities is the basis of the rapidly growing field of neural science and engineering, diagnostics, therapy, and wearable and implantable devices. Owing to intrinsic dissimilarities between soft, wet, and living biological tissues and rigid, dry, and synthetic electronic systems, the development of more compatible, effective, and stable interfaces between these two different realms has been one of the most daunting challenges in science and technology. Recently, hydrogels have emerged as a promising material candidate for the next-generation bioelectronic interfaces, due to their similarities to biological tissues and versatility in electrical, mechanical, and biofunctional engineering. In this review, we discuss (i) the fundamental mechanisms of tissue-electrode interactions, (ii) hydrogels' unique advantages in bioelectrical interfacing with the human body, (iii) the recent progress in hydrogel developments for bioelectronics, and (iv) rational guidelines for the design of future hydrogel bioelectronics. Advances in hydrogel bioelectronics will usher unprecedented opportunities toward ever-close integration of biology and electronics, potentially blurring the boundary between humans and machines. 
520 |a National Science Foundation (U.S.) (CMMI-1661627) 
520 |a United States. Office of Naval Research (N00014-17-1-2920) 
520 |a Massachusetts Institute of Technology. Institute for Soldier Nanotechnologies (W911NF-13-D-0001) 
520 |a Samsung Scholarship Foundation 
520 |a National Natural Science Foundation (China) (51763010) 
520 |a Science Foundation for Excellent Youth Talents in Jiangxi Province (20162BCB23053) 
520 |a Key Research and Development Program of Jiangxi Province (20171BBH80007) 
520 |a Natural Science Foundation of Jiangxi Province (20171BAB216018) 
520 |a China Scholarship Council (201608360062) 
655 7 |a Article 
773 |t Chemical Society Reviews