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首页> 外文期刊>Applied Surface Science >Uniquely structured quaternary metal oxide polyhedra as efficient anode materials for lithium-ion batteries
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Uniquely structured quaternary metal oxide polyhedra as efficient anode materials for lithium-ion batteries

机译:独特的结构性季金属氧化物多面体作为锂离子电池的高效阳极材料

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Yolk-shell materials have been synthesized by various techniques including the sacrificial carbon template method and spray process, in which the carbon template was formed as an intermediate product. Here, uniquely structured quaternary transition metal oxide (TMO) polyhedra are synthesized by applying a zinc-doped carbon (Zn-C) template derived from a metal-organic framework (ZIF-8). Infiltration of Co, Ni, and Fe salts into the Zn-C template followed by oxidation produces quaternary TMO polyhedra with yolk-shell structures. Yolk-shell (Co0.5Ni0.5)Fe2O4-ZnO (denoted as YS-qTMOs) polyhedra with and without carbon-coating layer exhibit excellent cycling performances over 300 cycles. The 300th discharge capacity of the carbon-coated YS-qTMOs (denoted as YS-qTMOs/C) at a current density of 0.5 A g(-1) is as high as 774 mA h g(-1), while their reversible discharge capacity at a high current density of 8 A g(-1) is 463 mA h g(-1) The thin carbon coating layer improves the capacitive contribution of the YS-qTMOs/C electrode. The high capacitive contribution implies rapid lithium-ion transport kinetics, affording the excellent rate performance of the YS-qTMOs/C electrode. The synergetic effect of the unique structure with the void volume, quaternary composition, and thin carbon coating layer affords high lithium-ion storage performances of YS-qTMOs/C.
机译:通过包括牺牲碳模板方法和喷雾过程的各种技术合成了蛋白质 - 壳材料,其中碳模板形成为中间产物。这里,通过施加来自金属 - 有机框架(ZIF-8)的锌掺杂碳(Zn-C)模板来合成独特的结构性季过渡金属氧化物(TMO)多面体。 CO,Ni和Fe Salts渗透到Zn-C模板中,然后用蛋黄壳结构产生季型TMO多面体。 Yolk-shell(COO.5NI0.5)Fe2O4-ZnO(表示为YS-QTMOS)多面体,具有和不具有碳涂层的优异循环性能,超过300个循环。碳涂覆的YS-QTMOS(表示为YS-QTMOS / C)的300次放电容量在0.5Ag(-1)的电流密度高达774 mA Hg(-1),而其可逆放电容量在高电流密度为8A(-1)是463ma Hg(-1)薄的碳涂层改善了YS-QTMOS / C电极的电容贡献。高电容贡献意味着快速的锂离子输送动力学,得到了YS-QTMOS / C电极的优异速率性能。独特结构与空隙体积,季铵组合物和薄碳涂层的协同作用提供了ys-qtmos / c的高锂离子储存性能。

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