记忆电阻器
材料科学
神经形态工程学
纳米技术
膜
人工神经网络
离子键合
机器人
调制(音乐)
离子
兴奋性突触后电位
纳米流体学
电压
计算机科学
光热治疗
执行机构
仿生学
生物系统
工作(物理)
离子通道
电极
运动控制
电子工程
作者
Guanghui Song,Hao Zhou,Zehui Li,Xiuru Pan,Ziwen Lv,Jun Rao,Xiang Hao,Baozhong Lü,Gegu Chen,Yuehua Chen,Feng Peng
摘要
The balance between excitatory and inhibitory (E/I) signaling underpins complex neural functions in biological systems. However, replicating such ion-mediated regulation with biobased materials in artificial systems remains challenging. Herein, we demonstrate two distinct light-modulated 2D nanofluidic memristors based on paper-mill waste (xylan) reinforced membranes that emulate complementary E/I synaptic signaling, enabling precise robotic motion control via ionic neural networks. The memristors were constructed using xylan-reinforced MXene membranes with asymmetric electrolytes, leveraging the interfacial interactions between the functional groups of xylan derivatives and MXene to achieve nanofluidic membrane assembly and precise control over surface charge and ion selectivity. Upon illumination, the photothermal effect of MXene induces a uniform thermal field that enables thermally activated ion transport in the interlayer spacing, allowing these biomass-based memristors to emulate key excitatory and inhibitory synaptic behaviors. These complementary memristors further implement reconfigurable Boolean logic operations and serve as foundational components for ionic circuits, as demonstrated in series and parallel configurations. As a proof-of-concept, an E/I-integrated ionic neural network achieved precise control of ten robotic motion modes by tuning light pulses, concentration gradients, and ion selectivity. This work highlights the potential of biomass-reinforced materials for nanofluidic memristors and explores new frontiers in the application of biomass materials.
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