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Transparent arrays of bilayer-nanomesh microelectrodes for simultaneous electrophysiology and two-photon imaging in the brain

机译:双层纳米纳米微电极的透明阵列用于大脑中的同时电生理学和双光子成像

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摘要

Transparent microelectrode arrays have emerged as increasingly important tools for neuroscience by allowing simultaneous coupling of big and time-resolved electrophysiology data with optically measured, spatially and type resolved single neuron activity. Scaling down transparent electrodes to the length scale of a single neuron is challenging since conventional transparent conductors are limited by their capacitive electrode/electrolyte interface. In this study, we establish transparent microelectrode arrays with high performance, great biocompatibility, and comprehensive in vivo validations from a recently developed, bilayer-nanomesh material composite, where a metal layer and a low-impedance faradaic interfacial layer are stacked reliably together in a same transparent nanomesh pattern. Specifically, flexible arrays from 32 bilayer-nanomesh microelectrodes demonstrated near-unity yield with high uniformity, excellent biocompatibility, and great compatibility with state-of-the-art wireless recording and real-time artifact rejection system. The electrodes are highly scalable, with 130 kilohms at 1 kHz at 20 μm in diameter, comparable to the performance of microelectrodes in nontransparent Michigan arrays. The highly transparent, bilayer-nanomesh microelectrode arrays allowed in vivo two-photon imaging of single neurons in layer 2/3 of the visual cortex of awake mice, along with high-fidelity, simultaneous electrical recordings of visual-evoked activity, both in the multi-unit activity band and at lower frequencies by measuring the visual-evoked potential in the time domain. Together, these advances reveal the great potential of transparent arrays from bilayer-nanomesh microelectrodes for a broad range of utility in neuroscience and medical practices.
机译:透明微电极阵列通过允许将大且时间分辨的电生理数据与光学测量的,空间分辨的和类型分辨的单个神经元活动同时耦合,已成为神经科学越来越重要的工具。将透明电极按比例缩小到单个神经元的长度是一项挑战,因为常规的透明导体受其电容性电极/电解质界面的限制。在这项研究中,我们建立了一个透明的微电极阵列,该阵列具有高性能,良好的生物相容性以及最近开发的双层纳米复合材料复合材料的全面体内验证,其中金属层和低阻抗法拉第界面层可靠地堆叠在一起。相同的透明纳米网格图案。具体而言,来自32个双层纳米微电极的柔性阵列显示出接近统一的产量,具有较高的均匀性,出色的生物相容性以及与最新无线记录和实时伪像排除系统的高度兼容性。电极具有很高的可扩展性,直径为1 kHz时130 kmhms,直径为20μm,与非透明密歇根州阵列中的微电极性能相当。高度透明的双层纳米纳米微电极阵列允许在清醒小鼠的视觉皮层的2/3层中对单个神经元进行活体双光子成像,并在视觉上同时激活视觉诱发活动的高保真度电记录。通过测量时域中的视觉诱发电位,在较低的频率下获得多单元活动带。总之,这些进展揭示了双层纳米纳米微电极透明阵列在神经科学和医学实践中的广泛应用的巨大潜力。

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