Flexible metallic core–shell nanostructured electrodes for neural interfacing

电极 材料科学 微电极 纳米线 介电谱 循环伏安法 纳米技术 生物相容性 多电极阵列 电阻抗 电化学 生物医学工程 化学 电气工程 冶金 医学 工程类 物理化学
作者
Beatriz L. Rodilla,Ana Arché‐Núñez,Sandra Ruiz‐Gómez,Ana Lucía Dominguez,Claudia Fernández‐González,Clara Guillén-Colomer,Ankor González-Mayorga,Noelia Rodríguez-Díez,J. Julio Camarero,Rodolfo Miranda,Elisa López‐Dolado,P. Ocón,María Concepción Serrano,Lucas Pérez,M. Teresa González
出处
期刊:Scientific Reports [Nature Portfolio]
卷期号:14 (1): 3729-3729 被引量:6
标识
DOI:10.1038/s41598-024-53719-4
摘要

Abstract Electrodes with nanostructured surface have emerged as promising low-impedance neural interfaces that can avoid the charge‐injection restrictions typically associated to microelectrodes. In this work, we propose a novel approximation, based on a two-step template assisted electrodeposition technique, to obtain flexible nanostructured electrodes coated with core–shell Ni–Au vertical nanowires. These nanowires benefit from biocompatibility of the Au shell exposed to the environment and the mechanical properties of Ni that allow for nanowires longer and more homogeneous in length than their only-Au counterparts. The nanostructured electrodes show impedance values, measured by electrochemical impedance spectroscopy (EIS), at least 9 times lower than those of flat reference electrodes. This ratio is in good accordance with the increased effective surface area determined both from SEM images and cyclic voltammetry measurements, evidencing that only Au is exposed to the medium. The observed EIS profile evolution of Ni–Au electrodes over 7 days were very close to those of Au electrodes and differently from Ni ones. Finally, the morphology, viability and neuronal differentiation of rat embryonic cortical cells cultured on Ni–Au NW electrodes were found to be similar to those on control (glass) substrates and Au NW electrodes, accompanied by a lower glial cell differentiation. This positive in-vitro neural cell behavior encourages further investigation to explore the tissue responses that the implantation of these nanostructured electrodes might elicit in healthy (damaged) neural tissues in vivo, with special emphasis on eventual tissue encapsulation.
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