电极
材料科学
神经调节
沉积(地质)
生物电子学
电阻抗
纳米技术
神经刺激
刺激
光电子学
微电极
电化学
纳米尺度
假电容器
生物医学工程
纳米晶材料
神经假体
测距
循环伏安法
薄膜
纳米传感器
介电谱
可扩展性
作者
Qinghua Duan,Shuying Wu,Ruping Liu,Jiaheng Yu,Xin Liu,Yingjie Hao,Z.-S. Liu,Kai San Chan,Pan Zhang,Jinyu Zang,Juan Tan,Weimin Xu,Zhijian Wang,Xiaochuan Dai
出处
期刊:Nano Letters
[American Chemical Society]
日期:2026-03-03
卷期号:26 (10): 3443-3453
被引量:1
标识
DOI:10.1021/acs.nanolett.5c06350
摘要
Achieving neuromodulation at subcellular scales requires stimulation electrodes that integrate micrometer-scale footprints, high spatial density, and an efficient, reliable charge-delivery capability. Here, we introduce a diffusion-tuned galvanostatic deposition strategy, guided by mass transport mediation, to uniformly and array-widely coat PEDOT:PSS onto densely packed electrodes with diameters ranging from 3 to 10 μm. The resulting Subcellular-Scale Stimulation Electrode Arrays (3SEA) exhibit robust electrochemical performance, with a tens to hundreds kilohms impedance at 1 kHz and charge-storage capacities of 22.1–54.1 mC/cm 2 . They also achieve charge-injection capacities of 2.31–10.1 mC/cm 2, surpassing previously reported values of microelectrodes. Functional validation of 3SEA upon neurostimulation using calcium imaging of HT-22 neurons exhibits reliable stimulus-evoked Ca 2+ transients, confirming subcellular-scale and efficient stimulation capability with biphasic pulses as low as 1 nC/phase. Our results establish a scalable framework for fabricating high-performance subcellular-scale stimulating bioelectronics and high-precision neural interfaces.
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