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蜘蛛丝启发的可拉伸石墨烯编织织物用于高灵敏度、透明、可穿戴应变传感器。

Spider-Web-Inspired Stretchable Graphene Woven Fabric for Highly Sensitive, Transparent, Wearable Strain Sensors.

机构信息

Department of Mechanical and Aerospace Engineering , The Hong Kong University of Science and Technology , Clear Water Bay , Kowloon , Hong Kong.

Institute for Advanced Study , The Hong Kong University of Science and Technology , Clear Water Bay , Hong Kong.

出版信息

ACS Appl Mater Interfaces. 2019 Jan 16;11(2):2282-2294. doi: 10.1021/acsami.8b18312. Epub 2019 Jan 7.

Abstract

Advanced wearable strain sensors with high sensitivity and stretchability are an essential component of flexible and soft electronic devices. Conventional metal- and semiconductor-based strain sensors are rigid, fragile, and opaque, restricting their applications in wearable electronics. Graphene-based percolative structures possess high flexibility and transparency but lack high sensitivity and stretchability. Inspired by the highly flexible spider web architecture, we propose semitransparent, ultrasensitive, and wearable strain sensors made from an elastomer-filled graphene woven fabric (E-GWF) for monitoring human physiological signals. The highly flexible elastomer microskeleton and the hierarchical structure of a graphene tube offer the strain sensor with both excellent sensing and switching capabilities. Two different types of E-GWF sensors, including freestanding E-GWF and E-GWF/polydimethylsiloxane (PDMS) composites, are developed. When their structure is controlled and optimized, the E-GWF strain sensors simultaneously exhibit extraordinary characteristics, such as a high gauge factor (70 at 10% strain, which ascends to 282 at 20%) in respect to other semitransparent or transparent strain sensors, a broad sensing range up to 30%, and excellent linearity. The E-GWF/PDMS composite sensor shows a unique reversible switching behavior at a high strain level of 30-50%, making it a suitable material for fast and reversible strain switching required in many early warning systems. With a view to real-world applications of these sensors and switches, we demonstrate human motion detection and switch controls of light-emitting-diode lamps and liquid-crystal-display circuits. Their unique structure and capabilities can find a wide range of practical applications, such as health monitoring, medical diagnosis, early warning systems for structural failure, and wearable displays.

摘要

具有高灵敏度和拉伸性的先进可穿戴应变传感器是柔性和软电子设备的重要组成部分。传统的基于金属和半导体的应变传感器具有刚性、易碎和不透明的特点,限制了它们在可穿戴电子设备中的应用。基于石墨烯的渗滤结构具有高柔韧性和透明度,但缺乏高灵敏度和拉伸性。受高度灵活的蜘蛛网结构的启发,我们提出了由弹性体填充的石墨烯编织织物(E-GWF)制成的半透明、超高灵敏和可穿戴应变传感器,用于监测人体生理信号。高度灵活的弹性体微骨架和石墨烯管的分层结构为应变传感器提供了出色的传感和切换能力。开发了两种不同类型的 E-GWF 传感器,包括独立式 E-GWF 和 E-GWF/聚二甲基硅氧烷(PDMS)复合材料。当控制和优化其结构时,E-GWF 应变传感器同时表现出非凡的特性,例如高应变系数(在 10%应变下为 70,在 20%应变下上升至 282),与其他半透明或透明应变传感器相比,传感范围高达 30%,以及出色的线性度。E-GWF/PDMS 复合传感器在高达 30-50%的高应变水平下显示出独特的可逆切换行为,使其成为许多预警系统所需的快速和可逆应变切换的合适材料。鉴于这些传感器和开关的实际应用,我们演示了人体运动检测和发光二极管灯和液晶显示电路的开关控制。它们独特的结构和功能可以找到广泛的实际应用,例如健康监测、医疗诊断、结构故障预警系统和可穿戴显示器。

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