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A flexible three-dimensional electrode mesh: An enabling technology for wireless brain–computer interface prostheses

机译:灵活的三维电极网:无线脑机接口假体的一种启用技术

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摘要

The neural interface is a key component in wireless brain–computer prostheses. In this study, we demonstrate that a unique three-dimensional (3D) microneedle electrode on a flexible mesh substrate, which can be fabricated without complicated micromachining techniques, is conformal to the tissues with minimal invasiveness. Furthermore, we demonstrate that it can be applied to different functional layers in the nervous system without length limitation. The microneedle electrode is fabricated using drawing lithography technology from biocompatible materials. In this approach, the profile of a 3D microneedle electrode array is determined by the design of a two-dimensional (2D) pattern on the mask, which can be used to access different functional layers in different locations of the brain. Due to the sufficient stiffness of the electrode and the excellent flexibility of the mesh substrate, the electrode can penetrate into the tissue with its bottom layer fully conformal to the curved brain surface. Then, the exposed contact at the end of the microneedle electrode can successfully acquire neural signals from the brain.
机译:神经接口是无线脑计算机假体的关键组成部分。在这项研究中,我们证明了在柔性网状基材上的独特三维(3D)微针电极,无需复杂的微加工技术即可制造,它符合组织且侵袭性最小。此外,我们证明了它可以应用于神经系统的不同功能层而没有长度限制。使用生物相容性材料的拉制光刻技术制造微针电极。在这种方法中,3D微针电极阵列的轮廓由掩模上的二维(2D)图案设计决定,该图案可用于访问大脑不同位置的不同功能层。由于电极足够的刚度和网状基底的出色柔韧性,电极可以穿透其组织,使其底层完全与弯曲的脑表面完全吻合。然后,微针电极末端的裸露接触可以成功地从大脑获取神经信号。

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