掺杂钼和电化学活化共同诱导钒复合材料成为钙离子电池的高倍率长寿命阳极

IF 13 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Energy & Environmental Materials Pub Date : 2024-01-30 DOI:10.1002/eem2.12690
Hongchen Pan, Chunfang Wang, Minling Qiu, Yaxin Wang, Cuiping Han, Ding Nan
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摘要

钙离子电池因其天然丰度和 Ca2+/Ca 的低氧化还原电位而被认为是大规模能量存储应用的理想候选材料。然而,目前的钙离子技术仍然受制于缺乏可容纳大 Ca2+ (1.00 Å)的高容量、长寿命电极材料。本文报告了一种通过掺杂钼和原位电化学活化诱导的非晶态钒结构,作为钙离子电池的高倍率阳极材料。钼的掺杂可以破坏 VS4 材料的晶格稳定性,提高结构的柔韧性。随后的电化学活化进一步将该材料转化为硫化物和氧化物共存的复合材料(定义为 MoVSO),在循环过程中作为一种活性材料储存 Ca2+。因此,这种无定形钒结构具有出色的速率能力,在 5 A 和 50 A g-1 条件下,放电容量分别达到 306.7 mAh g-1 和 149.2 mAh g-1,超长循环寿命达 2000 次,容量保持率为 91.2%。这些数值代表了迄今为止钙离子电池的最高水平。机理研究表明,该材料经历了部分相变过程,从而得到了 MoVSO。这项研究揭示了硫化钒在水性电解质中的钙储存机理,加速了高性能水性钙离子电池的开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Mo Doping and Electrochemical Activation Co-Induced Vanadium Composite as High-Rate and Long-Life Anode for Ca-Ion Batteries

Calcium-ion batteries have been considered attractive candidates for large-scale energy storage applications due to their natural abundance and low redox potential of Ca2+/Ca. However, current calcium ion technology is still hampered by the lack of high-capacity and long-life electrode materials to accommodate the large Ca2+ (1.00 Å). Herein, an amorphous vanadium structure induced by Mo doping and in-situ electrochemical activation is reported as a high-rate anode material for calcium ion batteries. The doping of Mo could destroy the lattice stability of VS4 material, enhancing the flexibility of the structure. The following electrochemical activation further converted the material into sulfide and oxides co-dominated composite (defined as MoVSO), which serves as an active material for the storage of Ca2+ during cycling. Consequently, this amorphous vanadium structure exhibits excellent rate capability, achieving discharge capacities of 306.7 and 149.2 mAh g−1 at 5 and 50 A g−1 and an ultra-long cycle life of 2000 cycles with 91.2% capacity retention. These values represent the highest level to date reported for calcium ion batteries. The mechanism studies show that the material undergoes a partial phase transition process to derive MoVSO. This work unveiled the calcium storage mechanism of vanadium sulfide in aqueous electrolytes and accelerated the development of high-performance aqueous calcium ion batteries.

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来源期刊
Energy & Environmental Materials
Energy & Environmental Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
17.60
自引率
6.00%
发文量
66
期刊介绍: Energy & Environmental Materials (EEM) is an international journal published by Zhengzhou University in collaboration with John Wiley & Sons, Inc. The journal aims to publish high quality research related to materials for energy harvesting, conversion, storage, and transport, as well as for creating a cleaner environment. EEM welcomes research work of significant general interest that has a high impact on society-relevant technological advances. The scope of the journal is intentionally broad, recognizing the complexity of issues and challenges related to energy and environmental materials. Therefore, interdisciplinary work across basic science and engineering disciplines is particularly encouraged. The areas covered by the journal include, but are not limited to, materials and composites for photovoltaics and photoelectrochemistry, bioprocessing, batteries, fuel cells, supercapacitors, clean air, and devices with multifunctionality. The readership of the journal includes chemical, physical, biological, materials, and environmental scientists and engineers from academia, industry, and policy-making.
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