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首页> 外文期刊>ACS nano >Polymer Composite with Carbon Nanofibers Aligned during Thermal Drawing as a Microelectrode for Chronic Neural Interfaces
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Polymer Composite with Carbon Nanofibers Aligned during Thermal Drawing as a Microelectrode for Chronic Neural Interfaces

机译:聚合物复合材料与碳纳米纤维在热拉伸期间排列为慢性神经界面的微电极

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摘要

Microelectrodes provide a direct pathway to investigate brain activities electrically from the external world, which has advanced our fundamental understanding of brain functions and has been utilized for rehabilitative applications as brain-machine interfaces. However, minimizing the tissue response and prolonging the functional durations of these devices remain challenging. Therefore, the development of next-generation microelectrodes as neural interfaces is actively progressing from traditional inorganic materials toward biocompatible and functional organic materials with a miniature footprint, good flexibility, and reasonable robustness. In this study, we developed a miniaturized all polymer based neural probe with carbon nanofiber (CNF) composites as recording electrodes via the scalable thermal drawing process. We demonstrated that in situ CNF unidirectional alignment can be achieved during the thermal drawing, which contributes to a drastic improvement of electrical conductivity by 2 orders of magnitude compared to a conventional polymer electrode, while still maintaining the mechanical compliance with brain tissues. The resulting neural probe has a miniature footprint, including a recording site with a reduced size comparable to a single neuron and maintained impedance that was able to capture neural activities. Its stable functionality as a chronic implant has been demonstrated with the long-term reliable electrophysiological recording with single-spike resolution and the minimal tissue response over the extended period of implantation in wild-type mice. Technology developed here can be applied to basic chronic electrophysiological studies as well as clinical implementation for neuro-rehabilitative applications.
机译:微电极提供直接途径,用于从外部世界电气地研究大脑活动,这已经推进了对大脑功能的基本理解,并且已被用于恢复应用作为脑机接口。然而,最小化组织响应和延长这些器件的功能持续时间仍然具有挑战性。因此,作为神经界面的下一代微电极的发展是在传统的无机材料中朝向生物相容性和功能性有机材料的主动占地面积,良好的灵活性和合理的鲁棒性。在这项研究中,我们通过可伸缩的热拉伸过程开发了一种用碳纳米纤维(CNF)复合材料的小型化的所有聚合物基础探针,所述聚合物基于碳纳米纤维(CNF)复合材料作为记录电极。我们证明,在热拉伸期间可以实现原位CNF单向对准,这有助于与常规聚合物电极相比,通过2个级的电导率提高2级,同时仍然保持与脑组织的机械依从性。所得到的神经探针具有微型占地面积,包括具有减小尺寸的记录部位,其与单个神经元相当并且保持能够捕获神经活动的阻抗。其作为慢性植入物的稳定功能已经通过长期可靠的电生理学记录,具有单秒针分辨率和在野生型小鼠中延长的植入期间的最小组织响应。这里开发的技术可用于基本的慢性电生理研究以及神经康复应用的临床实施。

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