1Department of Chemistry, Zhejiang-Israel Joint Laboratory of Self-Assembling Functional Materials, ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou 310058, People’s Republic of China
2School of Basic Medical Sciences, Zhejiang Chinese Medical University, Hangzhou 310053, People’s Republic of China
3General Surgery Department, Children’s Hospital, Zhejiang University School of Medicine, National Clinical Research Center for Children’s Health, Hangzhou 310052, People’s Republic of China
4Department of Lung Transplantation and General Thoracic Surgery, The First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou 310003, People’s Republic of China
5Department of Orthopedics, The Fourth Affiliated Hospital, Zhejiang University School of Medicine, Yiwu 322005, People’s Republic of China
6School of Electronics and Information Technology, Sun Yat-Sen University, Guangzhou 510006, People’s Republic of China
7Department of Obstetrics and Gynecology, The Tenth Affiliated Hospital, Southern Medical University, Dongguan 523059, People’s Republic of China
8Dongguan Key Laboratory of Major Diseases in Obstetrics and Gynecology, Dongguan, 523059, People’s Republic of China
【AIGC One Sentence Reading】:The development of active micro/nano-bioelectronic devices has enhanced electrophysiological recording, enabling high-fidelity capture of action potential signals, crucial for cardiology and neuroscience research. This paper reviews their progress and explores future prospects.
【AIGC Short Abstract】:The development of precise and sensitive electrophysiological recording platforms is crucial for cardiology and neuroscience research. Recent advancements in active micro/nano-bioelectronic devices have facilitated the study of electrophysiology, offering potential for high-fidelity action potential signal recording. This paper reviews these devices, focusing on their applications and effects on electrophysiological signals, anticipating their future progress in medical research.
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Abstract
The development of precise and sensitive electrophysiological recording platforms holds the utmost importance for research in the fields of cardiology and neuroscience. In recent years, active micro/nano-bioelectronic devices have undergone significant advancements, thereby facilitating the study of electrophysiology. The distinctive configuration and exceptional functionality of these active micro-nano-collaborative bioelectronic devices offer the potential for the recording of high-fidelity action potential signals on a large scale. In this paper, we review three-dimensional active nano-transistors and planar active micro-transistors in terms of their applications in electro-excitable cells, focusing on the evaluation of the effects of active micro/nano-bioelectronic devices on electrophysiological signals. Looking forward to the possibilities, challenges, and wide prospects of active micro-nano-devices, we expect to advance their progress to satisfy the demands of theoretical investigations and medical implementations within the domains of cardiology and neuroscience research.
The Author Email: Li Zhongjun (Zhongjun@gdmu.edu.cn), Teng Chong (tengchong1984@zju.edu.cn), Fang Jiaru (fangir9@mail2.sysu.edu.cn), Hu Ning (huning@zju.edu.cn)