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用于周围神经接口的材料与柔性电子学的最新进展。

Recent advances in materials and flexible electronics for peripheral nerve interfaces.

作者信息

Bettinger Christopher J

机构信息

1Department of Materials Science and Engineering, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, PA 15213 USA.

2Department of Biomedical Engineering, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, PA 15213 USA.

出版信息

Bioelectron Med. 2018 May 23;4:6. doi: 10.1186/s42234-018-0007-6. eCollection 2018.

Abstract

Peripheral nerve interfaces are a central technology in advancing bioelectronic medicines because these medical devices can record and modulate the activity of nerves that innervate visceral organs. Peripheral nerve interfaces that use electrical signals for recording or stimulation have advanced our collective understanding of the peripheral nervous system. Furthermore, devices such as cuff electrodes and multielectrode arrays of various form factors have been implanted in the peripheral nervous system of humans in several therapeutic contexts. Substantive advances have been made using devices composed of off-the-shelf commodity materials. However, there is also a demand for improved device performance including extended chronic reliability, enhanced biocompatibility, and increased bandwidth for recording and stimulation. These aspirational goals manifest as much needed improvements in device performance including: increasing mechanical compliance (reducing Young's modulus and increasing extensibility); improving the barrier properties of encapsulation materials; reducing impedance and increasing the charge injection capacity of electrode materials; and increasing the spatial resolution of multielectrode arrays. These proposed improvements require new materials and novel microfabrication strategies. This mini-review highlights selected recent advances in flexible electronics for peripheral nerve interfaces. The foci of this mini-review include novel materials for flexible and stretchable substrates, non-conventional microfabrication techniques, strategies for improved device packaging, and materials to improve signal transduction across the tissue-electrode interface. Taken together, this article highlights challenges and opportunities in materials science and processing to improve the performance of peripheral nerve interfaces and advance bioelectronic medicine.

摘要

外周神经接口是推进生物电子医学的核心技术,因为这些医疗设备能够记录和调节支配内脏器官的神经活动。利用电信号进行记录或刺激的外周神经接口增进了我们对周围神经系统的整体认识。此外,诸如袖带电极和各种外形因素的多电极阵列等设备已在多种治疗环境中植入人体的外周神经系统。使用现成的商品材料制成的设备已经取得了实质性进展。然而,人们也对提高设备性能有需求,包括延长长期可靠性、增强生物相容性以及增加记录和刺激的带宽。这些理想目标表现为对设备性能的迫切改进,包括:提高机械顺应性(降低杨氏模量并增加可扩展性);改善封装材料的阻隔性能;降低电极材料的阻抗并增加电荷注入容量;以及提高多电极阵列的空间分辨率。这些拟议的改进需要新材料和新颖的微加工策略。本综述重点介绍了外周神经接口柔性电子学的一些最新进展。本综述的重点包括用于柔性和可拉伸基板的新型材料、非常规微加工技术、改进设备封装的策略以及改善跨组织 - 电极界面信号转导的材料。总之,本文强调了材料科学和加工方面的挑战与机遇,以提高外周神经接口的性能并推进生物电子医学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa20/7098226/3746c85e25c5/42234_2018_7_Fig1_HTML.jpg

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