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A Self‐Healing Crease‐Free Supramolecular All‐Polymer Supercapacitor

机译:自愈的皱折的超分子全聚合物超级电容器

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摘要

While traditional three‐layer structure supercapacitors are under mechanical manipulations, the high‐stress region concentrates, inevitably causing persistent structural problems including interlayer slippage, crease formation, and delamination of the electrode–electrolyte interface. Toward this, an all‐polymeric, all‐elastic and non‐laminated supercapacitor with high mechanical reliability and excellent electrochemical performance is developed. Specifically, a polypyrrole electrode layer is in situ integrated into a silk fibroin‐based elastic supramolecular hydrogel film with extensive hydrogen and covalent bonds, where a non‐laminate device is realized with structural elasticity at the device level. The non‐laminate configuration can avoid slippage and delamination, while the elasticity can preclude crease formation. Furthermore, under more severe mechanical damage, the supercapacitors can restore the electrochemical performance through non‐autonomous self‐healing capabilities, where the supramolecular design of host–guest interactions in the hydrogel matrix results in a superior self‐healing efficiency approaching ≈95.8% even after 30 cutting/healing cycles. The all‐elastic supercapacitor delivers an areal capacitance of 0.37 F cm−2 and a volumetric energy density of 0.082 mW h cm−3, which can well‐maintain the specific capacitance even at −20 °C with over 85.2% retention after five cut/healing cycles.
机译:虽然传统的三层结构超级电容器处于机械操纵,但高应力区域浓缩,不可避免地引起持续的结构问题,包括层间隙,折痕形成和电极电解质界面的分层。向此迈出,开发了具有高机械可靠性和优异电化学性能的全聚合物,全弹性和非层压超级电容器。具体地,聚吡咯电极层原位集成到具有广泛的氢和共价键的丝素蛋白的弹性超分子水凝胶膜中,其中非层压装置在装置水平处以结构弹性实现。非层压结构可以避免滑动和分层,而弹性可以排除折痕形成。此外,在更严重的机械损伤之外,超级电容器可以通过非自治的自我愈合能力恢复电化学性能,其中水凝胶基质中的宿主相互作用的超分子设计导致均匀的自我愈合效率均匀≈95.8% 30次切割/愈合周期后。全弹性超级电容器提供0.37f cm-2的面积电容和0.082 mw H cm-3的容量能量密度,即使在-20°C下也能良好地保持比电容,在五个切割后保持超过85.2%的保留/愈合周期。

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