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首页> 外文期刊>ACS applied materials & interfaces >Confined Water-Assistant Thermal Response of a Graphene Oxide Heterostructure and Its Enabled Mechanical Sensors for Load Sensing and Mode Differentiation
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Confined Water-Assistant Thermal Response of a Graphene Oxide Heterostructure and Its Enabled Mechanical Sensors for Load Sensing and Mode Differentiation

机译:限制石墨烯异质结构的水辅助热响应及其使能负载感测和模式分化的机械传感器

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摘要

Mechanically responsive features are essential in devising mechanical sensors capable of sensing and differentiating loadings. We present a heterostructure composed of bilayer graphene oxides and confined water as a mechanical sensor that enables the detection and differentiation of tension, compression, pressure, and bending. Guided by molecular simulations, we demonstrate that the thermal transport across solid-liquid interfaces is sensitive to loading modes owing to the reversible response of hydrogen bonding networks between confined water molecules and graphene oxides and quantitatively elucidate the thermal transport mechanism by correlating the thermal conductance, number, and distribution of hydrogen bonds and interfacial energy with mechanical loadings. Such structure-enabled mechanical sensor with contrasting thermal response to different loading modes is devised to exemplify the robustness of sensing functions. These results lay a foundation for rational designs of mechanical sensors that leverage the thermal response of solid-liquid systems beyond the current strategy relying on the electrical properties of sole solids.
机译:机械响应性在设计能够感测和分化载荷的机械传感器方面是必不可少的。我们呈现由双层石墨烯氧化物组成的异质结构,并且被限制水作为机械传感器,其能够检测和分化张力,压缩,压力和弯曲。通过分子模拟的指导,我们证明,由于蓄水分子和石墨烯氧化物之间的氢键网络的可逆响应,通过与热传导相互定量阐明热传输机构,因此跨固液界面的热传输对加载模式敏感。机械载荷的数量和氢键和界面能量的分布。设计了这种结构的机械传感器,具有对不同加载模式的对比热响应的机械传感器,以举例说明传感功能的鲁棒性。这些结果为机械传感器的合理设计奠定了基础,该机械传感器利用固体系统的热响应,超出电流策略依赖于唯一固体的电性能。

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