微电极
材料科学
可扩展性
计算机科学
多电极阵列
生物医学工程
电极
电极阵列
神经活动
快速成型
纳米技术
神经科学
生物
工程类
化学
物理化学
数据库
复合材料
作者
Marie Jung,Jamal Abu Shihada,Simon Decke,Lina Koschinski,Peter Severin Graff,Sofia Pazmino,Anke Hoellig,Henner Koch,Simon Musall,Viviana Rincón Montes,Viviana Rincón Montes
标识
DOI:10.1002/adma.202418524
摘要
Abstract 3D microelectrode arrays (MEAs) are gaining popularity as brain–machine interfaces and platforms for studying electrophysiological activity. Interactions with neural tissue depend on the electrochemical, mechanical, and spatial features of the recording platform. While planar or protruding 2D MEAs are limited in their ability to capture neural activity across layers, existing 3D platforms still require advancements in manufacturing scalability, spatial resolution, and tissue integration. In this work, a customizable, scalable, and straightforward approach to fabricate flexible 3D kirigami MEAs containing both surface and penetrating electrodes, designed to interact with the 3D space of neural tissue, is presented. These novel probes feature up to 512 electrodes distributed across 128 shanks in a single flexible device, with shank heights reaching up to 1 mm. The 3D kirigami MEAs are successfully deployed in several neural applications, both in vitro and in vivo, and identified spatially dependent electrophysiological activity patterns. Flexible 3D kirigami MEAs are therefore a powerful tool for large‐scale electrical sampling of complex neural tissues while improving tissue integration and offering enhanced capabilities for analyzing neural disorders and disease models where high spatial resolution is required.
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