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There-dimensional porous carbon network encapsulated SnO2 quantum dots as anode materials for high-rate lithium ion batteries

机译:三维多孔碳网络封装的SnO2量子点作为高倍率锂离子电池的负极材料

摘要

SnO2 quantum dots have attracted enormous interest, since they have been shown to effectively minimize the volume change stress, improve the anode kinetic and shorten the lithium ion migration distance when used as anode materials for lithium ion battery. In this work, we report a facile strategy to fabricate nanostructure with homogenous SnO2 quantum dots anchored on three-dimensional (3D) nitrogen and sulfur dual-doped porous carbon (NSGC@SnO2). Characterization results show that the obtained SnO2 quantum dots have an average critical size of 3-5 nm and uniformly encapsulated in the porous of NSGC matrix. The as-designed nanostructure can effectively avoid the aggregation of SnO2 quantum dots as well as accommodate the mechanical stress induced by the volume change of SnO2 quantum dots and thus maintain the structure integrity of the electrode. As a result, the obtained NSGC@SnO2 composite exhibits a specific reversible capacity as high as 1118 mAh g(-1) at a current of 200 mA g(-1) after 100 cycles along with a high coulombic efficiency of 98% and excellent rate capability.
机译:SnO2量子点已引起人们极大的兴趣,因为当它们被用作锂离子电池的负极材料时,可以有效地减小体积变化应力,改善负极动力学并缩短锂离子迁移距离。在这项工作中,我们报告了一种简便的策略来制造具有均质SnO2量子点的纳米结构,该量子点锚固在三维(3D)氮和硫双掺杂多孔碳(NSGC @ SnO2)上。表征结果表明,所获得的SnO2量子点的平均临界尺寸为3-5 nm,均匀地包裹在NSGC基质的多孔中。如此设计的纳米结构可以有效避免SnO2量子点的聚集,并适应由SnO2量子点的体积变化引起的机械应力,从而保持电极的结构完整性。结果,获得的NSGC @ SnO2复合材料经过100次循环后,在200 mA g(-1)的电流下显示出高达1118 mAh g(-1)的比可逆容量,并且具有98%的高库仑效率,并且具有优异的库仑效率。速率能力。

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