基于纳米结构金网络的软电子开关和自适应逻辑门

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Giacomo Nadalini, Alexander Dallinger, Davide Sottocorno, Francesco Greco, Francesca Borghi, Paolo Milani
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引用次数: 0

摘要

神经形态基板的出现促进了材料自主和自适应设备的发展,作为硬件解决方案,用于减少当前传统数据处理技术在能量需求方面的低效率。软材料上数据处理能力的集成主要集中在软机器人和可穿戴设备感兴趣的边缘计算范式的发展上。为此,在气相中产生的金纳米结构复杂网络被用于制造神经形态装置。后者集成在软聚二甲基硅氧烷(PDMS)衬底上,配备可拉伸的激光诱导石墨烯电极,用于生产材料器件,以弥合数据处理和与环境相互作用之间的差距。通过软机械响应电子开关和软可重构逻辑门的开发,证明了非线性电阻开关电学特性的描述和控制。由于金网络的冗余性和自适应连通性,即使在很小的机械扰动下,它们也能保持布尔函数分类。这些结果为直接集成在软系统上的物理和计算智能的富有成效的结合提供了一个有希望的起点,以有效地与周围场景进行交互。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Soft Electronic Switches and Adaptive Logic Gates Based on Nanostructured Gold Networks

Soft Electronic Switches and Adaptive Logic Gates Based on Nanostructured Gold Networks
The advent of neuromorphic substrates is promoting the development of in materia autonomous and adaptive devices, employed as hardware solutions to reduce the current inefficiencies of traditional data processing techniques, in terms of energy requirements. The integration of data processing capabilities on soft materials is here focused on the development of the edge computing paradigm of interest for soft robotics and wearable devices. For such purposes, gold nanostructured complex networks produced in the gas phase are employed to fabricate neuromorphic devices. The integration of the latter on a soft Polydimethylsiloxane (PDMS) substrate equipped with stretchable laser-induced graphene electrodes, is exploited for the production of in materia devices to bridge the gap between data processing and interaction with the environment. The description and the control of the non-linear, resistive switching electrical properties are demonstrated by the development of soft mechano-responsive electronic switches and soft reconfigurable logic gates. These preserve Boolean functions classifications even under small mechanical perturbations, thanks to the redundant and adaptive connectivity of the gold networks. These results constitute a promising starting point for a fruitful combination of physical and computing intelligence directly integrated on soft systems to efficiently interact with the surrounding scenario.
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来源期刊
Advanced Electronic Materials
Advanced Electronic Materials NANOSCIENCE & NANOTECHNOLOGYMATERIALS SCIE-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
11.00
自引率
3.20%
发文量
433
期刊介绍: Advanced Electronic Materials is an interdisciplinary forum for peer-reviewed, high-quality, high-impact research in the fields of materials science, physics, and engineering of electronic and magnetic materials. It includes research on physics and physical properties of electronic and magnetic materials, spintronics, electronics, device physics and engineering, micro- and nano-electromechanical systems, and organic electronics, in addition to fundamental research.
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