Mechanisms of Water-Stimulated Mg2+ Intercalation in Vanadium Oxide: Toward the Development of Hydrated Vanadium Oxide Cathodes for Mg Batteries

被引:10
|
作者
Johnston, Brandon [1 ]
Henry, Hakeem [1 ]
Kim, Nam [1 ]
Lee, Sang Bok [1 ]
机构
[1] Univ Maryland, Dept Chem & Biochem, College Pk, MD 20742 USA
关键词
vanadium oxide; magnesium ion; water; hydrated; solvated; thin film;
D O I
10.3389/fenrg.2020.611391
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
As lithium-ion batteries approach their theoretical limits for energy density, magnesium-ion batteries are emerging as a promising next-generation energy storage technology. However, progress in magnesium-ion battery research has been stymied by a lack of available high capacity cathode materials that can reversibly insert magnesium ions. Vanadium Oxide (V2O5) has emerged as one of the more promising candidate cathode materials, owing to its high theoretical capacity, facile synthesis methods, and relatively high operating voltage. This review focuses on the outlook of hydrated V2O5 structures as a high capacity cathode material for magnesium-ion batteries. In general, V2O5 structures exhibit poor experimental capacity for magnesium-ion insertion due to sluggish magnesium-ion insertion kinetics and poor electronic conductivity. However, several decades ago, it was discovered that the addition of water to organic electrolytes significantly improves magnesium-ion insertion into V2O5. This review clarifies the various mechanisms that have been used to explain this observation, from charge shielding to proton insertion, and offers an alternative explanation that examines the possible role of structural hydroxyl groups on the V2O5 surface. While the mechanism still needs to be further studied, this discovery fueled new research into V2O5 electrodes that incorporate water directly as a structural element. The most promising of these hydrated V2O5 materials, many of which incorporate conductive additives, nanostructured architectures, and thin film morphologies, are discussed. Ultimately, however, these hydrated V2O5 structures still face a significant barrier to potential applications in magnesium-ion batteries. During full cell electrochemical cycling, these hydrated structures tend to leach water into the electrolyte and passivate the surface of the magnesium anode, leading to poor cycle life and low capacity retention. Recently, some promising strides have been made to remedy this problem, including the use of artificial solid electrolyte interphase layers as an anode protection scheme, but a call to action for more anode protection strategies that are compatible with trace water and magnesium metal is required.
引用
收藏
页数:13
相关论文
共 50 条
  • [22] A strategy to control crystal water content in hydrated vanadium oxide cathode for promoting aqueous rechargeable zinc-ion batteries
    Gu, Yuanxiang
    Han, Yingjie
    Qin, Zihan
    Li, Di
    Wang, Lei
    JOURNAL OF ALLOYS AND COMPOUNDS, 2022, 911
  • [23] Experimental Validation of Density Functional Theory Predictions on Structural Water Impact in Vanadium Oxide Cathodes for Zinc-Ion Batteries
    Wei, Mengdong
    Zhang, Yu
    Gu, Yaoyu
    Wang, Zhiwen
    Ye, Hang
    Wang, Yang
    Qu, Shaojie
    Hu, Kuan
    Zhao, Junqi
    Liu, Chunsheng
    Jia, Dianzeng
    Lin, He
    SMALL, 2024, 20 (52)
  • [24] "Double guarantee mechanism" of Ca2+-intercalation and rGO-integration ensures hydrated vanadium oxide with high performance for aqueous zinc-ion batteries
    Hu, Tao
    Feng, Ziyi
    Zhang, Yifu
    Liu, Yanyan
    Sun, Jingjing
    Zheng, Jiqi
    Jiang, Hanmei
    Wang, Peng
    Dong, Xueying
    Meng, Changgong
    INORGANIC CHEMISTRY FRONTIERS, 2021, 8 (01) : 79 - 89
  • [25] Tremella-like Hydrated Vanadium Oxide Cathode with an Architectural Design Strategy toward Ultralong Lifespan Aqueous Zinc-Ion Batteries
    Guan, Xinru
    Sun, Qiangchao
    Sun, Congli
    Duan, Tong
    Nie, Wei
    Liu, Yanbo
    Zhao, Kangning
    Cheng, Hongwei
    Lu, Xionggang
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (35) : 41688 - 41697
  • [26] Employing the optimized pre-intercalation strategy to design functional Mo pre-intercalated hydrated vanadium oxide for aqueous zinc-ion batteries
    Shi, Guofei
    Zhao, Peng
    Gao, Pei
    Xing, Yuye
    Shen, Boxiong
    JOURNAL OF ENERGY STORAGE, 2024, 78
  • [27] Communication-Sol-Gel Synthesized Magnesium Vanadium Oxide, MgxV2O5•nH2O: The Role of Structural Mg2+ on Battery Performance
    Yin, Jiefu
    Pelliccione, Christopher J.
    Lee, Shu Han
    Takeuchi, Esther S.
    Takeuchi, Kenneth J.
    Marschilok, Amy C.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2016, 163 (09) : A1941 - A1943
  • [28] Structural Engineering of Vanadium Oxide Cathodes by Mn2+ Preintercalation for High-Performance Aqueous Zinc-Ion Batteries
    Li, Fengfeng
    Sheng, Hongwei
    Ma, Hongyun
    Qi, Yifeng
    Shao, Mingjiao
    Yuan, Jiao
    Li, Wenquan
    Lan, Wei
    ACS APPLIED ENERGY MATERIALS, 2023, 6 (11) : 6201 - 6213
  • [29] Fast Li+ diffusion in interlayer-expanded vanadium disulfide nanosheets for Li+/Mg2+ hybrid-ion batteries
    Meng, Yuan
    Zhao, Yingying
    Wang, Dashuai
    Yang, Di
    Gao, Yu
    Lian, Ruqian
    Chen, Gang
    Wei, Yingjin
    JOURNAL OF MATERIALS CHEMISTRY A, 2018, 6 (14) : 5782 - 5788
  • [30] Vanadium oxide bronzes in Na2O-CaO-MO-V2O5 (M = Mg, Ni) systems
    Slobodin, BV
    Krasnenko, TI
    Dobrynin, BE
    Zabara, OA
    RUSSIAN JOURNAL OF INORGANIC CHEMISTRY, 2001, 46 (11) : 1752 - 1756