Organic Neuroelectronics: From Neural Interfaces to Neuroprosthetics

被引:66
作者
Go, Gyeong-Tak [1 ]
Lee, Yeongjun [2 ]
Seo, Dae-Gyo [1 ]
Lee, Tae-Woo [1 ,3 ,4 ]
机构
[1] Seoul Natl Univ, Dept Mat Sci & Engn, 1 Gwanak Ro, Seoul 08826, South Korea
[2] Stanford Univ, Dept Chem Engn, Stanford, CA 94305 USA
[3] Seoul Natl Univ, Inst Engn Res, Res Inst Adv Mat, Soft Foundry, 1 Gwanak Ro, Seoul 08826, South Korea
[4] Seoul Natl Univ, Sch Chem & Biol Engn, 1 Gwanak Ro, Seoul 08826, South Korea
基金
新加坡国家研究基金会;
关键词
artificial nerves; artificial neurons; artificial synapses; bioelectronics; nervetronics; neuromorphic electronics; CONDUCTING POLYMER-COATINGS; FIELD-EFFECT TRANSISTORS; DEEP BRAIN-STIMULATION; LOW-VOLTAGE; ELECTRICAL-STIMULATION; ARTIFICIAL SYNAPSES; ELECTRODES; TISSUE; DEVICES; NERVE;
D O I
10.1002/adma.202201864
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Requirements and recent advances in research on organic neuroelectronics are outlined herein. Neuroelectronics such as neural interfaces and neuroprosthetics provide a promising approach to diagnose and treat neurological diseases. However, the current neural interfaces are rigid and not biocompatible, so they induce an immune response and deterioration of neural signal transmission. Organic materials are promising candidates for neural interfaces, due to their mechanical softness, excellent electrochemical properties, and biocompatibility. Also, organic nervetronics, which mimics functional properties of the biological nerve system, is being developed to overcome the limitations of the complex and energy-consuming conventional neuroprosthetics that limit long-term implantation and daily-life usage. Examples of organic materials for neural interfaces and neural signal recordings are reviewed, recent advances of organic nervetronics that use organic artificial synapses are highlighted, and then further requirements for neuroprosthetics are discussed. Finally, the future challenges that must be overcome to achieve ideal organic neuroelectronics for next-generation neuroprosthetics are discussed.
引用
收藏
页数:32
相关论文
共 242 条
[31]   Carbon-Based Nanomaterials: Multifunctional Materials for Biomedical Engineering [J].
Cha, Chaenyung ;
Shin, Su Ryon ;
Annabi, Nasim ;
Dokmeci, Mehmet R. ;
Khademhosseini, Ali .
ACS NANO, 2013, 7 (04) :2891-2897
[32]   Neural recording and modulation technologies [J].
Chen, Ritchie ;
Canales, Andres ;
Anikeeva, Polina .
NATURE REVIEWS MATERIALS, 2017, 2 (02)
[33]   Recent Technological Advances in Fabrication and Application of Organic Electrochemical Transistors [J].
Chen, Shuai ;
Surendran, Abhijith ;
Wu, Xihu ;
Lee, Sang Yeon ;
Stephen, Meera ;
Leong, Wei Lin .
ADVANCED MATERIALS TECHNOLOGIES, 2020, 5 (12)
[34]   Gold dissolution: towards understanding of noble metal corrosion [J].
Cherevko, Serhiy ;
Topalov, Angel A. ;
Zeradjanin, Aleksandar R. ;
Katsounaros, Ioannis ;
Mayrhofer, Karl J. J. .
RSC ADVANCES, 2013, 3 (37) :16516-16527
[35]  
Chi Yu Mike, 2010, IEEE Rev Biomed Eng, V3, P106, DOI 10.1109/RBME.2010.2084078
[36]   Energy scavenging artificial nervous system for detecting rotational movement [J].
Choi, Daehwan ;
Song, Min-Kyu ;
Sung, Taehoon ;
Jang, Sukjin ;
Kwon, Jang-Yeon .
NANO ENERGY, 2020, 74
[37]   Flexible memristive devices based on polyimide: mica nanosheet nanocomposites with an embedded PEDOT: PSS layer [J].
Choi, Myoung Kyun ;
Kim, Woo Kyum ;
Sung, Sihyun ;
Wu, Chaoxing ;
Kim, Hyoun Woo ;
Kim, Tae Whan .
SCIENTIFIC REPORTS, 2018, 8
[38]   Vertical organic synapse expandable to 3D crossbar array [J].
Choi, Yongsuk ;
Oh, Seyong ;
Qian, Chuan ;
Park, Jin-Hong ;
Cho, Jeong Ho .
NATURE COMMUNICATIONS, 2020, 11 (01)
[39]  
Clark JJ, 2010, NAT METHODS, V7, P126, DOI [10.1038/nmeth.1412, 10.1038/NMETH.1412]
[40]   Neural stimulation and recording electrodes [J].
Cogan, Stuart F. .
ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, 2008, 10 :275-309