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首页> 外文期刊>ACS applied materials & interfaces >Transparent and Flexible Electronics Assembled with Metallic Nanowire-Layered Nondrying Glycerogel
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Transparent and Flexible Electronics Assembled with Metallic Nanowire-Layered Nondrying Glycerogel

机译:用金属纳米线层叠的Nondrying Glycerogel组装透明和柔性电子器件

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摘要

There has been increasing demand for transparent and mechanically durable electrical conductors for their uses in wearable electronic devices. It is common to layer metallic nanowires on transparent but stiff poly(dimethylsiloxane) (PDMS) or stretchable but opaque Ecoflex-based substrates. Here, we hypothesized that layering metallic nanowires on a stretchable and hygroscopic gel would allow us to assemble a transparent, stretchable, and durable conductor. The hygroscopic property of the gel was attained by partially replacing water in the preformed polyacrylamide hydrogel with glycerol. The resulting gel, denoted as a glycerogel, could remain hydrated for over 6 months in air by taking up water molecules from the air. The glycerogel was tailored to be stretchable up to 8 times its original length by tuning the amount of the cross-linker and acrylamide. The resulting glycerogel allowed for deposition of wavy silver nanowires using the prestrain method up to 400% prestrain, without causing kinks and interfacial cracks often found with nanowires layered onto PDMS. With a prestrain of 100%, the resulting nanowire-gel conductor exhibited optical transparency (85%) and electrical conductivity (17.1 ohm/sq) even after 5000 cycles of deformation. The results of this study would broadly be useful to improve the performance of the next generation of flexible electronic devices.
机译:对于可穿戴电子设备的使用,对透明和机械耐用的电导体的需求越来越大。它是透明但坚硬的聚(二甲基硅氧烷)(PDMS)或可伸展但不透明的Ecoflex基底物上的金属纳米线。这里,我们假设可拉伸和吸湿凝胶上的层状金属纳米线允许我们组装透明,可伸缩和耐用的导体。通过用甘油部分替换预成型的聚丙烯酰胺水凝胶中的水通过凝胶的吸湿性。由所得凝胶表示为甘油凝胶,通过从空气中占用水分子,可以在空气中保持30多个月。通过调整交联剂和丙烯酰胺的量来定制甘油凝胶可达到其原始长度的最高可延长8倍。所得甘油凝胶允许使用高达400%普什的普罗斯·方法沉积波状银纳米线,而不会引起尾部和纳米线分层的扭结和界面裂缝,层叠在PDM上。普通为100%,即使在5000个变形循环之后,所得纳米线 - 凝胶导体也表现出光学透明度(85%)和电导率(17.1欧姆/平方)。本研究的结果将广泛用于提高下一代灵活电子设备的性能。

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