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首页> 外文期刊>ACS nano >Stretchable Lithium-Ion Battery Based on Re-entrant Micro-honeycomb Electrodes and Cross-Linked Gel Electrolyte
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Stretchable Lithium-Ion Battery Based on Re-entrant Micro-honeycomb Electrodes and Cross-Linked Gel Electrolyte

机译:基于再参与者微蜂窝电极的可拉伸锂离子电池和交联凝胶电解质

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摘要

Stretchable energy storage devices are of great interest because of their potential applications in body-friendly, skin-like, wearable devices. However, stretchable batteries are very challenging to fabricate. The electrodes must have a degree of stretchability because the active materials occupy most of the volume, and the separator and packaging should also be stretchable. Here, an all-component stretchable lithium-ion battery was realized by leveraging the structural stretchability of re-entrant micro-honeycomb graphene-carbon nanotube (CNT)/active material composite electrodes and a physically cross-linked gel electrolyte, without using an inactive elastomeric substrate or matrix. Active materials interconnected via the entangled CNT and graphene sheets provided a mechanically stable porous network framework, and the inwardly protruding framework in the re-entrant honeycomb structure allowed for structural stretching during deformation. The composite network consisting solely of binder-free, highly conductive materials provided superior electron transfer, and vertically aligned microchannels enabled facile ion transport. Additionally, the physically cross-linked gel electrolyte increased the mechanical stability upon deformation of the electrodes and was effective as a stretchable separator. The resulting stretchable battery showed a high areal capacity of 5.05 mAh.cm(-2), superior electrochemical performance up to 50% strain under repeated (up to 500) stretch-release cycles, and long-term stability of 95.7% after 100 cycles in air conditions.
机译:由于它们在身体友好,皮肤,可穿戴设备中的潜在应用,可拉伸的能量存储设备具有很大的兴趣。然而,可伸缩电池非常具有挑战性。电极必须具有可拉伸性程度,因为活性材料占据大部分体积,并且隔板和包装也应该是可伸缩的。这里,通过利用再参与者微蜂窝石墨烯 - 碳纳米管(CNT)/活性材料复合电极和物理交联的凝胶电解质的结构拉伸性来实现所有组分可拉伸锂离子电池,而不使用无效的弹性体基材或基质。通过缠绕的CNT和石墨烯片互连的活性材料提供了机械稳定的多孔网络框架,以及在变形期间允许的再参赛剂蜂窝结构中的向内突出的框架。仅由粘合剂,高导电材料组成的复合网络提供了优异的电子转移,并且垂直对齐的微通道使能穿孔离子输送。另外,物理交联的凝胶电解质在电极变形时增加了机械稳定性,并且作为可拉伸分离器是有效的。得到的可拉伸电池显示出5.05mAh.cm(-2)的高度成分容量,优异的电化学性能高达50%的菌株在重复(最多500)的拉伸循环下,并且在100次循环后的长期稳定性为95.7%在空气条件下。

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