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Switchless Multiplexing of Graphene Active Sensor Arrays for Brain Mapping

机译:无切换石墨烯有源传感器阵列的脑部映射的复用

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摘要

Sensor arrays used to detect electrophysiological signals from the brain are paramount in neuroscience. However, the number of sensors that can be interfaced with macroscopic data acquisition systems currently limits their bandwidth. This bottleneck originates in the fact that, typically, sensors are addressed individually, requiring a connection for each of them. Herein, we present the concept of frequency-division multiplexing (FDM) of neural signals by graphene sensors. We demonstrate the high performance of graphene transistors as mixers to perform amplitude modulation (AM) of neural signals in situ, which is used to transmit multiple signals through a shared metal line. This technology eliminates the need for switches, remarkably simplifying the technical complexity of state-of-the-art multiplexed neural probes. Besides, the scalability of FDM graphene neural probes has been thoroughly evaluated and their sensitivity demonstrated in vivo. Using this technology, we envision a new generation of high-count conformal neural probes for high bandwidth brain machine interfaces.
机译:用于检测来自大脑的电生理信号的传感器阵列在神经科学中是至关重要的。然而,可以用宏观数据采集系统接口的传感器的数量当前限制它们的带宽。该瓶颈源自该事实,通常,传感器是单独寻址的,需要为每个的连接。这里,我们通过石墨烯传感器呈现神经信号的频分复用(FDM)的概念。我们展示了石墨烯晶体管作为混合器的高性能,以便原位执行神经信号的幅度调制(AM),其用于通过共用金属线传输多个信号。该技术消除了对交换机的需求,显着简化了最先进的多路复用神经探针的技术复杂性。此外,FDM石墨烯神经探针的可扩展性已经彻底评估,其敏感性在体内显示。使用这项技术,我们设想了新一代高分辨率脑机接口的高计形保形神经探头。

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