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Synthesis and electrochemical performance of three-dimensionally ordered macroporous CoCr2O4 as an anode material for lithium ion batteries

机译:三维有序大孔COCR2O4作为锂离子电池阳极材料的合成与电化学性能

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Three-dimensionally ordered macroporous (3DOM) CoCr2O4 was synthesized by a colloidal crystal templating route and used as an anode material for lithium ion batteries. Benefiting from the porous structure and smaller particle size, the 3DOM-CoCr2O4 anode exhibits a high specific capacity and excellent rate capability. After an initial specific capacity decrease from 1588 to 709 mAh g(-1) during the first three cycles at 50 mAh g(-1), the capacity exhibits an increasing trend in subsequent cycles. After 100 cycles, a high specific capacity of 1218 mAh g(-1) is achieved, which is much higher than that of nontemplated n-CoCr2O4 (499 mAh g(-1)). Even at a very high current density of 3000 mA g(-1), a specific capacity of 328 mAh g(-1) could be obtained. The impact of calcination temperature for 3DOM-CoCr2O4 composites on electrochemical performance is also explored, and possible electrochemical processes involving CoCr2O4 during charging and discharging are proposed in this work. During the charge process, oxidation may occur not only from Co-0 to Co2+, but also partly from Co2+ to Co3+. It is also found that the 3DOM architecture of the CoCr2O4 compounds can be preserved even after 100 charge and discharge cycles. (C) 2017 Elsevier Ltd. All rights reserved.
机译:通过胶体晶体模板途径合成三维有序的大孔(3Dom)Cocro 4,用作锂离子电池的阳极材料。受益于多孔结构和较小的粒径,3Dom-CocR2O4阳极表现出高的特定容量和优异的速率能力。在50mAhg(-1)的前三个循环期间,在初始特异性容量从1588降至709mAhg(-1)后,该容量在随后的循环中表现出增加的趋势。在100次循环之后,实现了高比容量为1218mAhg(-1),远高于延续的N-cocr2O4(499mAhg(-1))。即使在3000 mA g(-1)的非常高的电流密度下,也可以获得328mAhg(-1)的特定容量。还探索了煅烧温度对3Dom-CocR2O4复合材料对电化学性能的影响,并且在这项工作中提出了涉及COCR2O4期间COCR2O4的电化学过程。在电荷过程中,氧化不仅可能发生在CO-0至CO2 +中,而且可能部分来自CO 2 +至CO3 +。还发现,即使在100充电和放电循环之后,也可以保留COCR 2 O 4化合物的3域架构。 (c)2017 Elsevier Ltd.保留所有权利。

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