光刺激
材料科学
纳米材料
电容
纳米技术
光电子学
生物电子学
纳米花
超级电容器
纳米棒
生物界面
纳米传感器
纳米生物技术
原子层沉积
双层电容
作者
Lokman Kaya,Onuralp Karatum,Rıdvan Balamur,Hümeyra Nur Kaleli,Asım Önal,S.A. Vanalakar,Murat Hasanreisoğlu,Sedat Nizamoğlu
出处
期刊:Advanced Science
[Wiley]
日期:2023-06-29
卷期号:10 (25): e2301854-e2301854
被引量:7
标识
DOI:10.1002/advs.202301854
摘要
Abstract Optoelectronic biointerfaces have gained significant interest for wireless and electrical control of neurons. Three–dimentional (3D) pseudocapacitive nanomaterials with large surface areas and interconnected porous structures have great potential for optoelectronic biointerfaces that can fulfill the requirement of high electrode‐electrolyte capacitance to effectively transduce light into stimulating ionic currents. In this study, the integration of 3D manganese dioxide (MnO 2 ) nanoflowers into flexible optoelectronic biointerfaces for safe and efficient photostimulation of neurons is demonstrated. MnO 2 nanoflowers are grown via chemical bath deposition on the return electrode, which has a MnO 2 seed layer deposited via cyclic voltammetry. They facilitate a high interfacial capacitance (larger than 10 mF cm −2 ) and photogenerated charge density (over 20 µC cm −2 ) under low light intensity (1 mW mm −2 ). MnO 2 nanoflowers induce safe capacitive currents with reversible Faradaic reactions and do not cause any toxicity on hippocampal neurons in vitro, making them a promising material for biointerfacing with electrogenic cells. Patch‐clamp electrophysiology is recorded in the whole‐cell configuration of hippocampal neurons, and the optoelectronic biointerfaces trigger repetitive and rapid firing of action potentials in response to light pulse trains. This study points out the potential of electrochemically‐deposited 3D pseudocapacitive nanomaterials as a robust building block for optoelectronic control of neurons.
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