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Controllable digital resistive switching for artificial synapses and pavlovian learning algorithm

机译:可控数字电阻切换人工神经突触和巴甫洛夫的学习算法

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The fundamental unit of the nervous system is a synapse, which is involved in transmitting information between neurons as well as learning, memory, and forgetting processes. Two-terminal memristors can fulfil most of these requirements; however, their poor dynamic changes in resistance to input electric stimuli remain an obstacle, which must be improved for accurate and quick information processing. Herein, we demonstrate the synaptic properties of ZnO-based memristors, which were significantly enhanced (similar to 340 times) by geometrical modulation due to the localized electric field enhancement. Specifically, by inserting Ag-nanowires and Ag-dots into the ZnO/Si interface, the resistive switching could be controlled from a digital to analog mode. A finite element simulation revealed that the presence of Ag could enhance the localized electric field, which in turn improved the migration of ionic species. Further, the device showed a variety of comprehensive synaptic functions, for instance, paired-pulse facilitation and transformation from short-term plasticity to long-term plasticity, including the Pavlovian associative learning process in a human brain. Our study presents a novel architecture to enhance the synaptic sensitivity, and its uses in practical applications, including the artificial learning algorithm.
机译:神经系统的基本单位突触,参与传输神经元之间的信息以及学习,记忆,遗忘的过程。记忆电阻器可以满足大部分的要求;但是,他们可怜的动态电阻的变化输入电刺激是一个障碍,必须提高准确、快速信息处理。ZnO-based记忆电阻器的突触特性,被显著增强(类似于340年通过几何调制由于次)局部电场增强。具体来说,通过插入Ag-nanowires和Ag-dots氧化锌/ Si接口,电阻从数字开关控制模拟模式。Ag)的存在可以提高局部电场,进而改善离子的迁移物种。设备显示各种全面的突触功能,例如,paired-pulse从短期的便利化和转换可塑性长期可塑性,包括巴甫洛夫的联想在人类学习过程大脑。增强突触敏感性,其使用实际应用,包括人工学习算法。

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