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Highly Stretchable and Conductive Silver Nanoparticle Embedded Graphene Flake Electrode Prepared by In situ Dual Reduction Reaction

机译:原位双重还原反应制备的高拉伸导电银纳米颗粒嵌入式石墨烯薄片电极

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摘要

The emergence of stretchable devices that combine with conductive properties offers new exciting opportunities for wearable applications. Here, a novel, convenient and inexpensive solution process was demonstrated to prepare in situ silver (Ag) or platinum (Pt) nanoparticles (NPs)-embedded rGO hybrid materials using formic acid duality in the presence of AgNO3 or H2PtCl6 at low temperature. The reduction duality of the formic acid can convert graphene oxide (GO) to rGO and simultaneously deposit the positively charged metal ion to metal NP on rGO while the formic acid itself is converted to a CO2 evolving gas that is eco-friendly. The AgNP-embedded rGO hybrid electrode on an elastomeric substrate exhibited superior stretchable properties including a maximum conductivity of 3012 S cm-1 (at 0 % strain) and 322.8 S cm-1 (at 35 % strain). Its fabrication process using a printing method is scalable. Surprisingly, the electrode can survive even in continuous stretching cycles.
机译:具有导电性能的可拉伸设备的出现为可穿戴应用提供了新的令人兴奋的机会。在这里,展示了一种新颖,方便且廉价的溶液处理方法,该方法可在低温下在AgNO3或H2PtCl6存在下使用甲酸对偶性来制备原位嵌入银(Ag)或铂(Pt)纳米粒子(NPs)的rGO杂化材料。甲酸的还原对偶性可以将氧化石墨烯(GO)转换为rGO,同时将带正电的金属离子沉积到rGO上的金属NP上,同时甲酸本身被转换为环保的可释放二氧化碳的气体。弹性体基底上的AgNP嵌入rGO混合电极表现出优异的可拉伸性能,包括最大电导率3012 S cm -1 (在0%应变下)和322.8 S cm -1 (35%应变时)。使用印刷方法的制造过程是可扩展的。出人意料的是,电极即使在连续的拉伸循环中也能存活。

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