神经工程
二极管
调制(音乐)
材料科学
光电子学
硅
神经科学
去极化
生物神经网络
细胞内
计算机科学
生物物理学
物理
生物
细胞生物学
声学
作者
Xin Fu,Zheng-wei Hu,Wenjun Li,L. Ma,Junyu Chen,Muyang Liu,Jie Liu,Shuhan Hu,Huachun Wang,Yunxiang Huang,Guo Yi Tang,Bozhen Zhang,Xue Cai,Yuqi Wang,Lizhu Li,Jian Ma,Song‐Hai Shi,Lan Yin,Hao Zhang,Xiaojian Li,Xing Sheng
标识
DOI:10.1073/pnas.2404164121
摘要
The development of advanced neural modulation techniques is crucial to neuroscience research and neuroengineering applications. Recently, optical-based, nongenetic modulation approaches have been actively investigated to remotely interrogate the nervous system with high precision. Here, we show that a thin-film, silicon (Si)-based diode device is capable to bidirectionally regulate in vitro and in vivo neural activities upon adjusted illumination. When exposed to high-power and short-pulsed light, the Si diode generates photothermal effects, evoking neuron depolarization and enhancing intracellular calcium dynamics. Conversely, low-power and long-pulsed light on the Si diode hyperpolarizes neurons and reduces calcium activities. Furthermore, the Si diode film mounted on the brain of living mice can activate or suppress cortical activities under varied irradiation conditions. The presented material and device strategies reveal an innovated optoelectronic interface for precise neural modulations.
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