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振荡反应和光激发系统之间的光通信:紫外和可见光辐射可以使人工神经元模型同步。

Optical Communication among Oscillatory Reactions and Photo-Excitable Systems: UV and Visible Radiation Can Synchronize Artificial Neuron Models.

机构信息

Department of Chemistry, Biology and Biotechnology, University of Perugia, Via Elce di sotto 8, 06123, Perugia, Italy.

Department of Chemical Sciences, School of Applied Science, University of Huddersfield, Queensgate, Huddersfield, HD1 3DH, UK.

出版信息

Angew Chem Int Ed Engl. 2017 Jun 19;56(26):7535-7540. doi: 10.1002/anie.201702289. Epub 2017 May 31.

Abstract

Neuromorphic engineering promises to have a revolutionary impact in our societies. A strategy to develop artificial neurons (ANs) is to use oscillatory and excitable chemical systems. Herein, we use UV and visible radiation as both excitatory and inhibitory signals for the communication among oscillatory reactions, such as the Belousov-Zhabotinsky and the chemiluminescent Orban transformations, and photo-excitable photochromic and fluorescent species. We present the experimental results and the simulations regarding pairs of ANs communicating by either one or two optical signals, and triads of ANs arranged in both feed-forward and recurrent networks. We find that the ANs, powered chemically and/or by the energy of electromagnetic radiation, can give rise to the emergent properties of in-phase, out-of-phase, anti-phase synchronizations and phase-locking, dynamically mimicking the communication among real neurons.

摘要

神经形态工程有望在我们的社会中产生革命性的影响。开发人工神经元 (AN) 的一种策略是使用振荡和兴奋的化学系统。在这里,我们使用紫外线和可见光辐射作为振荡反应(如 Belousov-Zhabotinsky 和化学发光 Orban 转化)和光激发光致变色和荧光物质之间通信的兴奋和抑制信号。我们展示了关于通过一个或两个光学信号进行通信的一对 AN 以及以前馈和反馈网络排列的三对 AN 的实验结果和模拟。我们发现,化学和/或电磁辐射能量供电的 AN 可以产生同相、异相、反相同步和锁相的涌现特性,动态模拟真实神经元之间的通信。

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