用于高功率密度和超长寿命钠离子电池的铋微球@N掺杂多孔碳复合阳极的简便一次合成方法

IF 2.4 4区 化学 Q3 CHEMISTRY, PHYSICAL
Ionics Pub Date : 2024-08-24 DOI:10.1007/s11581-024-05789-7
Xiaowu Liu, Manman Sun, DUOduo Zhu, Yuliang Zhou, Xin Chen, Kun Liu
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引用次数: 0

摘要

合理设计了铋微球@N掺杂多孔碳阳极(Bi@NPC-2),并通过简单的一锅热处理工艺成功制备了该复合材料。该复合材料具有优异的储钠性能,包括在 5 A g-1 条件下循环 4000 次后可达到 326.4 mAh g-1 的优异循环稳定性和 95% 的容量保持率,以及在 40 A g-1 的大电流条件下可达到 286.7 mAh g-1 的超高速率能力。如此优异的性能主要得益于独特的材料设计,三维多孔结构不仅有助于缓解铋的体积膨胀,还缩短了钠离子的扩散路径。此外,氮的掺杂提高了电极的导电性,为钠的储存提供了更多的活性位点。更重要的是,制备工艺简单,所用原材料便宜,因此铋微球@氮掺杂多孔碳复合材料具有重要的大规模实际应用价值。这种一步烧结法还可应用于其他合金基钠储存材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Facile one-pot synthesis of bismuth microspheres@N-doped porous carbon composite anodes for high power density and ultralong-life sodium-ion batteries

Facile one-pot synthesis of bismuth microspheres@N-doped porous carbon composite anodes for high power density and ultralong-life sodium-ion batteries

Bismuth microspheres@N-doped porous carbon anode (Bi@NPC-2) is rational designed and successfully prepared by an easy one-pot heat treatment process. The composite demonstrated superior sodium storage performance, including excellent cyclic stability of 326.4 mAh g−1 after 4000 cycles at 5 A g−1 with a capacity retention of 95% and ultra-high rate capability of 286.7 mAh g−1 at a high current rate of 40 A g−1. This excellent performance is mainly due to the unique material design, the three-dimensional porous structure not only helps to mitigate the volume expansion of bismuth, but also shortens the diffusion path of sodium ions. In addition, nitrogen doping improves the conductivity of the electrode and provides more active sites for sodium storage. More importantly, the preparation process is simple, and the raw materials used are cheap, thus the Bismuth microspheres@N-doped porous carbon composite shows important practical large-scale applications. This one-step sintering method can also be applied to other alloy-based sodium storage materials.

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来源期刊
Ionics
Ionics 化学-电化学
CiteScore
5.30
自引率
7.10%
发文量
427
审稿时长
2.2 months
期刊介绍: Ionics is publishing original results in the fields of science and technology of ionic motion. This includes theoretical, experimental and practical work on electrolytes, electrode, ionic/electronic interfaces, ionic transport aspects of corrosion, galvanic cells, e.g. for thermodynamic and kinetic studies, batteries, fuel cells, sensors and electrochromics. Fast solid ionic conductors are presently providing new opportunities in view of several advantages, in addition to conventional liquid electrolytes.
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