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Investigation of Fractal Carbon Nanotube Networks for Biophilic Neural Sensing Applications

机译:用于敌意神经传感应用的分形碳纳米管网络的研究

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摘要

We propose a carbon-nanotube-based neural sensor designed to exploit the electrical sensitivity of an inhomogeneous fractal network of conducting channels. This network forms the active layer of a multi-electrode field effect transistor that in future applications will be gated by the electrical potential associated with neuronal signals. Using a combination of simulated and fabricated networks, we show that thin films of randomly-arranged carbon nanotubes (CNTs) self-assemble into a network featuring statistical fractal characteristics. The extent to which the network’s non-linear responses will generate a superior detection of the neuron’s signal is expected to depend on both the CNT electrical properties and the geometric properties of the assembled network. We therefore perform exploratory experiments that use metallic gates to mimic the potentials generated by neurons. We demonstrate that the fractal scaling properties of the network, along with their intrinsic asymmetry, generate electrical signatures that depend on the potential’s location. We discuss how these properties can be exploited for future neural sensors.
机译:我们提出了一种基于碳纳米管的神经传感器,旨在利用导通通道的非均匀分形网络的电敏感性。该网络形成多电极场效应晶体管的有源层,在将来的应用中将被与神经元信号相关联的电势。使用模拟和制造网络的组合,我们将随机排列的碳纳米管(CNT)的薄膜自组装成统计分形特性的网络。预期网络的非线性响应产生高度检测的程度,预计将取决于CNT电性能和组装网络的几何特性。因此,我们进行探索性实验,该实验使用金属门来模拟神经元产生的电位。我们证明网络的分形缩放特性以及其内在不对称,产生依赖于潜在位置的电签名。我们讨论如何为未来的神经传感器利用这些属性。

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