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首页> 外文期刊>Journal of power sources >Binder-free ZnO@ZnSnO_3 quantum dots core-shell nanorod array anodes for lithium-ion batteries
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Binder-free ZnO@ZnSnO_3 quantum dots core-shell nanorod array anodes for lithium-ion batteries

机译:锂离子电池用无粘结剂ZnO @ ZnSnO_3量子点核-壳纳米棒阵列阳极

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摘要

In this work, ZnSnO3 quantum dots (QDs), instead of commonly used conductive carbon, are grown on the ZnO nanorod (NR) array to construct the binder-free ZnO@ZnSnO3 QDs core-shell NR array electrode on carbon cloth for lithium-ion battery. The ZnO@ZnSnO3 QDs core-shell NR array electrode exhibits excellent lithium storage performance with an improved cycling performance and superior rate capability compared to the ZnO NR array electrode. At a current density of 200 mAg(-1), 15.8% capacity loss is acquired in the ZnO@ZnSnO3 QDs core shell NR array electrode after 110 cycles with capacity retention of 1073 mAhg(-1). Significant increases in reversible capacities from 340 to 545 mAhg(-1) and from 95 to 390 mAhg(-1) at current densities of 1000 and 2000 mAg(-1), respectively, are achieved as the ZnO NR arrays are coated with the ZnSnO3 QD shells. The remarkably improved electrochemical performances result from that the configuration of binder-free ZnO@ ZnSnO3 QDs core-shell NR array electrode not only facilitates the charge transfer through the solid electrolyte interface and the electronic/ionic conduction boundary as well as lithium ion diffusion but also effectively accommodates the volume change during repeated charge/discharge processes.
机译:在这项工作中,在ZnO纳米棒(NR)阵列上生长了ZnSnO3量子点(QD),而不是常用的导电碳,从而在碳布上构造了用于锂电池的无粘合剂ZnO @ ZnSnO3 QDs核壳NR阵列电极。离子电池。与ZnO NR阵列电极相比,ZnO @ ZnSnO3 QDs核壳NR阵列电极表现出出色的锂存储性能,具有改善的循环性能和出色的倍率性能。在200 mAg(-1)的电流密度下,经过110次循环后,在ZnO @ ZnSnO3 QDs核壳NR阵列电极中获得了15.8%的容量损失,容量保持率为1073 mAhg(-1)。当ZnO NR阵列涂有ZnO NR阵列时,在电流密度分别为1000和2000 mAg(-1)时,可逆容量分别从340到545 mAhg(-1)和从95到390 mAhg(-1)显着增加。 ZnSnO3 QD壳。电化学性能的显着改善是由于无粘合剂的ZnO @ ZnSnO3 QDs核-壳NR阵列电极的配置不仅促进了电荷通过固体电解质界面和电子/离子传导边界以及锂离子扩散,而且有效地适应反复充电/放电过程中的体积变化。

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