由柔性电光 N2200 纳米线突触晶体管实现的生物启发神经肌肉系统

Jiahe Hu, Shangda Qu, Honghuan Xu, Lin Sun, C. Jiang, Lu Yang, Yi Du, Wentao Xu
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引用次数: 0

摘要

模仿肌肉系统的功能特征促进了神经形态假肢的发展。在这里,通过将借助柔性光电突触晶体管(FNST)的信息处理器与使用人造肌肉纤维的效应器连接起来,构建了一个生物启发神经肌肉系统。在该系统中,神经形态突触装置可操纵人造肌肉纤维的反应,从而模仿生物肌肉纤维的运动。FNST 通过光脉冲和电尖峰调节,模拟生物突触功能,从而应用于安全通信。n 型有机纳米线作为神经形态设备通道的可行性已得到证实。由于 n 型有机半导体 N2200 纳米线具有柔韧性,FNST 的电流在半径 = 1 厘米的条件下弯曲 5000 次后仍能保持其初始值的 85%以上。FNST 的耐弯曲性意味着它在可穿戴电子设备中的潜在应用。这项工作为电子皮肤、神经控制机器人和神经形态假肢的潜在发展提供了一种方法。
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A bioinspired neuromuscular system enabled by flexible electro-optical N2200 nanowire synaptic transistor
Mimicking the functional traits of the muscle system evolves the development of the neuromorphic prosthetic limbs. Herein, a bioinspired neuromuscular system was constructed by connecting an information processor with the aid of a flexible electro-optical synaptic transistor (FNST) to an effector that uses artificial muscle fibers. In this system, the response of artificial muscle fibers, which imitates the movement of biological muscle fibers, is manipulated by neuromorphic synaptic devices. The FNST is regulated by light pulses and electrical spikes to emulate biological synaptic functions, and thereby applied in secure communication. The feasibility of n-type organic nanowires acting as the channels for neuromorphic devices was demonstrated. Attributing to the flexibility of the n-type organic semiconductor N2200 nanowires, the current of the FNST retains > 85% of its initial value after the 5000 bending cycles to radius = 1 cm. The tolerance of bending of the FNST implies its potential applications in wearable electronics. This work offers an approach to potentially advancing electronic skin, neuro-controlled robots, and neuromorphic prosthetic limbs.
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