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Stretchable batteries with gradient multilayer conductors

机译:带有梯度多层导体的可拉伸电池

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Stretchable conductors are essential components in next-generation deformable and wearable electronic devices. The ability of stretchable conductors to achieve sufficient electrical conductivity, however, remains limited under high strain, which is particularly detrimental for charge storage devices. In this study, we present stretchable conductors made from multiple layers of gradient assembled polyurethane (GAP) comprising gold nanoparticles capable of self-assembly under strain. Stratified layering affords control over the composite internal architecture at multiple scales, leading to metallic conductivity in both the lateral and transversal directions under strains of as high as 300%. The unique combination of the electrical and mechanical properties of GAP electrodes enables the development of a stretchable lithium-ion battery with a charge-discharge rate capability of 100 mAh gsup?1/sup at a current density of 0.5 A gsup?1/sup and remarkable cycle retention of 96% after 1000 cycles. The hierarchical GAP nanocomposites afford rapid fabrication of advanced charge storage devices.
机译:可伸缩导体是下一代可变形和可穿戴电子设备中必不可少的组件。然而,在高应变下,可拉伸导体获得足够的电导率的能力仍然受到限制,这对电荷存储设备特别不利。在这项研究中,我们提出了由多层梯度组装聚氨酯(GAP)制成的可拉伸导体,其中包括能够在应变下自组装的金纳米颗粒。分层可对复合内部结构进行多尺度控制,从而在高达300%的应变下在横向和横向方向上都具有金属导电性。 GAP电极的电气和机械性能的独特结合,使得能够开发出可拉伸锂离子电池,其在0.5 A g的电流密度下的充放电速率能力为100 mAh g ?1 ?1 和1000次循环后的显着循环保持率为96%。分级的GAP纳米复合材料可快速制造高级电荷存储设备。

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