arrow
Return

A Nanozyme-Based Electrode for High-Performance Neural Recording

delete2023-12-07
delete9
PRE
AI
刘爽杰 cover
刘爽杰 (Shuangjie Liu)
Y
Yang Wang
Y
Yue Zhao
L
Ling Liu
S
Si Sun
张少芳 (Shaofang Zhang)
H
Haile Liu
S
Shuhu Liu
李永徽 (Yonghui Li)
F
Fan Yang
M
Menglu Jiao
X
Xinyu Sun
张玉勤 (Yuqin Zhang)
R
Renpeng Liu
穆晓宇 cover
穆晓宇 (Xiaoyu Mu)
王浩 cover
王浩 (Hao Wang)
张书 cover
张书 (Shu Zhang)
Y
Yang Jiang
谢曦 (Xi Xie)
段小洁 (Xiaojie Duan)
J
Jianning Zhang
G
Guosong Hong
张晓东 cover
张晓东 (Xiaodong Zhang) *
D
Dong Ming *
DOI:10.1002/adma.202304297delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
Implanted neural electrodes have been widely used to treat brain diseases that require high sensitivity and biocompatibility at the tissue-electrode interface. However, currently used clinical electrodes cannot meet both these requirements simultaneously, which hinders the effective recording of electronic signals. Herein, nanozyme-based neural electrodes incorporating bioinspired atomically precise clusters are developed as a general strategy with a heterogeneous design for multiscale and ultrasensitive neural recording via quantum transport and biocatalytic processes. Owing to the dual high-speed electronic and ionic currents at the electrode-tissue interface, the impedance of nanozyme electrodes is 26 times lower than that of state-of-the-art metal electrodes, and the acquisition sensitivity for the local field potential is approximate to 10 times higher than that of clinical PtIr electrodes, enabling a signal-to-noise ratio (SNR) of up to 14.7 dB for single-neuron recordings in rats. The electrodes provide more than 100-fold higher antioxidant and multi-enzyme-like activities, which effectively decrease 67% of the neuronal injury area by inhibiting glial proliferation and allowing sensitive and stable neural recording. Moreover, nanozyme electrodes can considerably improve the SNR of seizures in acute epileptic rats and are expected to achieve precise localization of seizure foci in clinical settings. Neural electrodes are indispensable diagnostic and therapeutic tools for neurological disorders. However, their detection sensitivity and biocompatibility remain unsolved challenges. Here, nanozyme electrodes that can simultaneously overcome the limitations associated with recording sensitivity, long-term acquisition stability, and peripheral nerve tissue necrosis through interfacial quantum transport and inhibition of neuroinflammation are developed, which are promising for brain science and engineering.image
Keywords:
acquisition sensitivity
biocatalytic
nanozymes
neural recording

Journal

Advanced Materials cover
Advanced Materials
IF:
26.8
Papers:
3.4W
Citations:
46.0W

Organization

T
tianjin university
Scholars:
7.9W
Papers: 5.7W
Citations: 88
S
Sun Yat Sen University
Scholars:
9.9W
Papers: 7.2W
Citations: 95
S
Stanford University
Scholars:
9.6W
Papers: 8.2W
Citations: 17.0W
P
peking university
Scholars:
11.7W
Papers: 8.7W
Citations: 146
T
Tianjin Medical University
Scholars:
2.4W
Papers: 1.5W
Citations: 1.3W
C
chinese academy of sciences
Scholars:
56.1W
Papers: 44.8W
Citations: 704
researcher View more organizations