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A rechargeable iodine-carbon battery that exploits ion intercalation and iodine redox chemistry

机译:利用离子嵌入和碘氧化还原化学作用的可充电碘碳电池

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摘要

Graphitic carbons have been used as conductive supports for developing rechargeable batteries. However, the classic ion intercalation in graphitic carbon has yet to be coupled with extrinsic redox reactions to develop rechargeable batteries. Herein, we demonstrate the preparation of a free-standing, flexible nitrogen and phosphorus co-doped hierarchically porous graphitic carbon for iodine loading by pyrolysis of polyaniline coated cellulose wiper. We find that heteroatoms could provide additional defect sites for encapsulating iodine while the porous carbon skeleton facilitates redox reactions of iodine and ion intercalation. The combination of ion intercalation with redox reactions of iodine allows for developing rechargeable iodine–carbon batteries free from the unsafe lithium/sodium metals, and hence eliminates the long-standing safety issue. The unique architecture of the hierarchically porous graphitic carbon with heteroatom doping not only provides suitable spaces for both iodine encapsulation and cation intercalation but also generates efficient electronic and ionic transport pathways, thus leading to enhanced performance.
机译:石墨碳已被用作开发可充电电池的导电载体。但是,石墨碳中经典的离子嵌入技术尚未与外部氧化还原反应结合在一起,以开发可充电电池。在这里,我们演示了通过热解聚苯胺涂层的纤维素擦拭布,制备用于碘负载的自支撑,柔性的氮和磷共掺杂的分级多孔石墨碳的制备方法。我们发现杂原子可以提供其他缺陷位点来封装碘,而多孔碳骨架则有助于碘和离子嵌入的氧化还原反应。离子嵌入与碘的氧化还原反应相结合,可以开发出不含不安全锂/钠金属的可充电碘碳电池,从而消除了长期存在的安全问题。具有杂原子掺杂的分层多孔石墨碳的独特结构不仅为碘封装和阳离子嵌入提供了合适的空间,而且还产生了有效的电子和离子传输路径,从而提高了性能。

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