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Memristive Switching Characteristics in Biomaterial Chitosan-Based Solid Polymer Electrolyte for Artificial Synapse

机译:基于生物材料壳聚糖的固体聚合物电解质对人工突触的椎体切换特性

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摘要

This study evaluated the memristive switching characteristics of a biomaterial solid polymer electrolyte (SPE) chitosan-based memristor and confirmed its artificial synaptic behavior with analog switching. Despite the potential advantages of organic memristors for high-end electronics, the unstable multilevel states and poor reliability of organic devices must be overcome. The fabricated Ti/SPE-chitosan/Pt-structured memristor has stable bipolar resistive switching (BRS) behavior due to a cation-based electrochemical reaction between a polymeric electrolyte and metal ions and exhibits excellent endurance in 5 × 102 DC cycles. In addition, we achieved multilevel per cell (MLC) BRS I-V characteristics by adjusting the set compliance current (Icc) for analog switching. The multilevel states demonstrated uniform resistance distributions and nonvolatile retention characteristics over 104 s. These stable MLC properties are explained by the laterally intensified conductive filaments in SPE-chitosan, based on the linear relationship between operating voltage margin (ΔVswitching) and Icc. In addition, the multilevel resistance dependence on Icc suggests the capability of continuous analog resistance switching. Chitosan-based SPE artificial synapses ensure the emulation of short- and long-term plasticity of biological synapses, including excitatory postsynaptic current, inhibitory postsynaptic current, paired-pulse facilitation, and paired-pulse depression. Furthermore, the gradual conductance modulations upon repeated stimulation by 104 electric pulses were evaluated in high stability.
机译:该研究评估了生物材料固体聚合物电解质(SPE)基于基于壳聚糖的椎管的椎间膜切换特性,并通过模拟切换证实了其人工突触行为。尽管有机回忆镜对于高端电子设备的潜在优势,但必须克服不稳定的多级状态和有机设备可靠性。由于聚合物电解质和金属离子之间的阳离子电化学反应,所制造的Ti / Spe-Chitosan / Pt结构膜具有稳定的双极电阻切换(BRS)行为,并且在5×102dc循环中表现出优异的耐久性。此外,我们通过调整模拟切换的设定顺应电流(ICC)来实现每个单元(MLC)BRS I-V特性的多级。多级状态显示出超过104秒的均匀电阻分布和非易失性保持特性。这些稳定的MLC性质由SPE-Chotosan中的横向增强的导电长丝来解释,基于工作电压裕度(ΔVswitching)和ICC之间的线性关系。此外,对ICC的多级电阻依赖性表明了连续模拟电阻切换的能力。基于壳聚糖的SPE人工突触确保了生物突触的短期和长期可塑性的仿真,包括兴奋性后突触电流,抑制突触突触电流,配对脉冲促进和配对脉冲抑制。此外,在高稳定性中评估了通过104个电脉冲重复刺激的逐渐导电调制。

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