触觉近传感器计算系统,结合沙漏形微结构电容传感器,实现生物逼真的能源效率

IF 12.3 1区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Jae-Yeong Cho, Seong Eun Kim, Chang-Jae Beak, Jihwan Lee, Wonjeong Suh, Bo-Yeon Lee, Sin-Hyung Lee
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引用次数: 0

摘要

仿生近传感器计算集成了传感和处理功能,为提高效率和减少此类应用的延迟提供了一种有前途的策略。在这里,我们介绍了具有生物逼真能量效率的触觉感觉神经系统,利用海星启发的电容压力传感器集成了柔性记忆电阻器。这些海星启发的传感器,具有高宽高比(~3)和应力聚焦,沙漏形介电微结构,能够在宽压力范围内进行高灵敏度的触觉检测,有效地模仿了人类皮肤的特性。人工触觉感觉神经将电容式传感器与具有突触可塑性的柔性记忆电阻器集成在一起,通过生物逼真地将机械刺激转换为瞬态电信号,可靠地作为节能的近传感器计算系统。该系统作为人工伤害感受器和触觉近传感器计算单元运行,能量消耗接近生物水平,分别约为140 pJ和2.2 fJ。这种受神经启发的本地化计算策略为高级智能用户界面应用程序提供了一个物理平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Tactile near-sensor computing systems incorporating hourglass-shaped microstructured capacitive sensors for bio-realistic energy efficiency

Tactile near-sensor computing systems incorporating hourglass-shaped microstructured capacitive sensors for bio-realistic energy efficiency

Bio-inspired near-sensor computing, which integrates sensing and processing functions, presents a promising strategy to enhance efficiency and reduce latency in such applications. Here, we introduce tactile sensory nerve systems with biologically realistic energy efficiency, utilizing starfish-inspired capacitive pressure sensors integrated with flexible memristors. These starfish-inspired sensors, with their high aspect ratio (~3) and stress-focusing, hourglass-shaped dielectric microstructures, enable highly sensitive tactile detection across a broad pressure range, effectively mimicking the properties of human skin. Artificial tactile sensory nerves, which integrate the capacitive sensor with a flexible memristor exhibiting synaptic plasticity, function reliably as energy-efficient near-sensor computing systems by bio-realistically transducing mechanical stimuli into transient electrical signals. The developed system operates as both an artificial nociceptor and a tactile near-sensor computing unit, with energy consumption approaching biological levels at approximately 140 pJ and 2.2 fJ, respectively. This neuro-inspired localized computing strategy offers a physical platform for advanced smart user interface applications.

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来源期刊
CiteScore
17.10
自引率
4.80%
发文量
91
审稿时长
6 weeks
期刊介绍: npj Flexible Electronics is an online-only and open access journal, which publishes high-quality papers related to flexible electronic systems, including plastic electronics and emerging materials, new device design and fabrication technologies, and applications.
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