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Nacre-inspired highly stretchable piezoresistive Cu-Ag nanowire/graphene synergistic conductive networks for strain sensors and beyond

机译:NACRE-Inspired高度可伸缩的压阻式Cu-AG纳米线/石墨烯协同的导电网络,用于应变传感器及超越

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Recently, it has become highly desirable but remains a challenge to design strain-sensing materials with rational geometric structures that endow the strain sensors with high sensitivity, large stretchability and a broad sensing range simultaneously. Herein, core-shell Cu-Ag nanowires (NWs) with tunable morphology and oxidation-resistance are achieved by an effective galvanic replacement reaction between Cu NWs and Ag(NH3)(2)(+) without any additional heating, stirring or reducing agent. When the mass ratio of Cu NWs to AgNO3 is 8 : 6, Cu-Ag NWs exhibit the best oxidation-resistance and electrical conductivity retention in harsh environments. Nacre-mimetic conductive composites are achieved by embedding porous conductive networks composed of Cu-Ag NWs/reduced graphene oxide (rGO) in a poly(styrene-block-butadiene-block-styrene) (SBS) matrix, enabling the process to be simple, energy-saving, and scalable. They can detect both tiny and large deformations with a wide sensing range (up to 374% strain), high sensitivity (a gauge factor up to 87 362), high break elongation (up to 660% strain), and excellent reliability and stability. This successful combination of huge sensing range and high sensitivity is attributed to the high stretchability of the SBS "mortar", the hierarchical architecture and the synergistic effects of sensitive two-dimensional (2D) rGO, and the conductive stretchable one-dimensional (1D) Cu-Ag NW "brick". In addition, the composites can be used as patterned conductive interconnects for light-emitting diodes.
机译:最近,它已经变得非常理想,但仍然是设计具有合理几何结构的应变传感材料的挑战,其同时赋予具有高灵敏度,大的拉伸性和宽度传感范围的应变传感器。这里,通过无任何额外加热,搅拌或还原剂的Cu NWS和Ag(NH 3)(2)(2)(2)(2)(+)之间的有效电常用置换反应来实现具有可调谐形态和氧化抗性的核 - 壳Cu-Ag纳米线(NWS)。没有任何额外的加热,搅拌或还原剂。当Cu NWS至AgNO 3的质量比为8:6时,Cu-Ag NWS在恶劣环境中表现出最佳的氧化抗性和电导率保持。通过将多孔导电网络嵌入聚(苯乙烯 - 嵌入丁二烯-嵌段 - 苯乙烯)(SBS)基质中的多孔导电网络通过将由Cu-Ag NWS / Sepers氧化物(Rgo)组成的多孔导电网络嵌入多孔导电网络来实现,使得该过程简单节能,节能和可扩展。它们可以检测具有宽的传感范围(高达374%的菌株),高灵敏度(高达87362),高断裂伸长(高达660%的菌株),以及出色的可靠性和稳定性。这种巨大的传感范围和高灵敏度的成功组合归因于SBS“砂浆”,分层架构和敏感二维(2D)Rgo的协同效应,以及导电伸缩一维(1D)的高可拉伸性。 CU-AG NW“砖”。另外,复合材料可以用作用于发光二极管的图案化导电互连。

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