材料科学
微电极
氧化铟锡
光遗传学
纳米技术
光电子学
弯曲半径
薄板电阻
电极
弯曲
复合材料
薄膜
化学
图层(电子)
神经科学
物理化学
生物
作者
Zhiyuan Chen,Rose T. Yin,Sofian N. Obaid,Jinbi Tian,Sheena W. Chen,Alana N. Miniovich,Nicolas Boyajian,Igor R. Efimov,Luyao Lu
标识
DOI:10.1002/admt.202000322
摘要
Abstract Flexible and transparent microelectrodes and interconnects provide the unique capability for a wide range of emerging biological applications, including simultaneous optical and electrical interrogation of biological systems. For practical biointerfacing, it is important to further improve the optical, electrical, electrochemical, and mechanical properties of the transparent conductive materials. Here, high‐performance microelectrodes and interconnects with high optical transmittance (59–81%), superior electrochemical impedance (5.4–18.4 Ω cm 2 ), and excellent sheet resistance (5.6–14.1 Ω sq −1 ), using indium tin oxide (ITO) and metal grid (MG) hybrid structures are demonstrated. Notably, the hybrid structures retain the superior mechanical properties of flexible MG other than brittle ITO with no changes in sheet resistance even after 5000 bending cycles against a small radius at 5 mm. The capabilities of the ITO/MG microelectrodes and interconnects are highlighted by high‐fidelity electrical recordings of transgenic mouse hearts during co‐localized programmed optogenetic stimulation. In vivo histological analysis reveals that the ITO/MG structures are fully biocompatible. Those results demonstrate the great potential of ITO/MG interfaces for broad fundamental and translational physiological studies.
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