An optically transparent multi-electrode array for combined electrophysiology and optophysiology at the mesoscopic scale

材料科学 电极 光电子学 氧化铟锡 纳米技术 基质(水族馆) 透明度(行为) 计算机科学 生物医学工程 薄膜 化学 医学 海洋学 计算机安全 物理化学 地质学
作者
Marcel Brosch,Martin Deckert,Sanchit Rathi,Kentaroh Takagaki,Theresa Weidner,Frank W. Ohl,Bertram Schmidt,M. Lippert
出处
期刊:Journal of Neural Engineering [IOP Publishing]
卷期号:17 (4): 046014-046014 被引量:10
标识
DOI:10.1088/1741-2552/aba1a4
摘要

Objective. A number of tissue penetrating opto-electrodes to simultaneously record and optogenetically influence brain activity have been developed. For experiments at the surface of the brain, such as electrocorticogram (ECoG) recordings and surface optogenetics, fewer devices have been described and no device has found widespread adoption for neuroscientific experiments. One issue slowing adoption is the complexity and fragility of existing devices, typically based on transparent electrode materials like graphene and indium-tin oxide (ITO). We focused here on improving existing processes based on metal traces and polyimide (PI), which produce more robust and cost-effective devices, to develop a multi-electrode array for optophysiology. Approach. The most widely used substrate material for surface electrodes, PI, has seen little use for optophysiologicalμECoG/ECoG arrays. This is due to its lack of transparency at optogenetically relevant short wavelengths. Here we use very thin layers of PI in combination with chrome-gold-platinum electrodes to achieve the necessary substrate transparency and high mechanical flexibility in a device that still rejects light artifacts well. Main results. The manufactured surface arrays have a thickness of only 6.5 µm, resulting in 80% transparency for blue light. We demonstrate immunity against opto-electric artifacts, long term stability and biocompatibility as well as suitability for optical voltage imaging. The biocompatible arrays are capable of recording stable ECoGs over months without any measurable degradation and can be used to map the tonotopic organization of the curved rodent auditory cortex. Significance. Our novel probes combine proven materials and processing steps to create optically near-transparent electrode arrays with superior longevity. In contrast to previous opto-electrodes, our probes are simple to manufacture, robust, offer long-term stability, and are a practical engineering solution for optophysiological experiments not requiring transparency of the electrode sites themselves.

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