Department of Materials Science and Engineering , Korea University , Anam-Dong, Seongbuk-Gu, Seoul 136-713 , Republic of Korea.
ACS Appl Mater Interfaces. 2018 May 16;10(19):16531-16540. doi: 10.1021/acsami.8b03104. Epub 2018 May 2.
Developing carbon scaffolds showing rational pore structures as cathode hosts is essential for achieving superior electrochemical performances of lithium-selenium (Li-Se) batteries. Hierarchically porous N-doped carbon polyhedrons anchored on crumpled graphene balls (NPC/CGBs) are synthesized by carbonizing a zeolitic imidazolate framework-8 (ZIF-8)/CGB composite precursor, producing an unprecedented effective host matrix for high-performance Li-Se batteries. Mesoporous CGBs obtained by one-pot spray pyrolysis are used as a highly conductive matrix for uniform polyhedral ZIF-8 growth. During carbonization, ZIF-8 polyhedrons on mesoporous CGBs are converted into N-doped carbon polyhedrons showing abundant micropores, forming a high-surface-area, high-pore-volume hierarchically porous NPC/CGB composite whose small unique pores effectively confine Se during melt diffusion, thereby providing conductive electron pathways. Thus, the integrated NPC/CGB-Se composite ensures high Se utilization originating from complete electrochemical reactions between Se and Li ions. The NPC/CGB-Se composite cathode exhibits high discharge capacities (998 and 462 mA h g at the 1st and 1000th cycles, respectively, at a 0.5 C current density), good capacity retention (68%, calculated from the 3rd cycle), and excellent rate capability. A discharge capacity of 409 mA h g is achieved even at an extremely high (15.0 C) current density.
开发具有合理孔结构的碳支架作为阴极宿主对于实现锂-硒(Li-Se)电池的优异电化学性能至关重要。通过碳化沸石咪唑酯骨架-8(ZIF-8)/CGB 复合前体,合成了一种前所未有的有效宿主基质,用于高性能 Li-Se 电池。通过一锅喷雾热解法获得的介孔 CGB 用作均匀多面 ZIF-8 生长的高导电性基质。在碳化过程中,介孔 CGB 上的 ZIF-8 多面体转化为具有丰富微孔的 N 掺杂碳多面体,形成具有高表面积、高孔体积的分级多孔 NPC/CGB 复合材料,其小独特孔有效限制了熔体扩散过程中的 Se,从而提供了导电电子途径。因此,集成的 NPC/CGB-Se 复合材料确保了高 Se 利用率,这源自 Se 和 Li 离子之间的完全电化学反应。NPC/CGB-Se 复合阴极具有高放电容量(在 0.5 C 电流密度下,第 1 次和第 1000 次循环分别为 998 和 462 mA h g)、良好的容量保持率(第 3 次循环计算的 68%)和优异的倍率性能。即使在极高的(15.0 C)电流密度下,也能实现 409 mA h g 的放电容量。