Pang Qiang, He Wei, Zhao Hainan, Yu Xiangyu, Wei Yingjin, Tian Ying, Xing Mingming, Fu Yao, Luo Xixian
School of Science, Dalian Maritime University, Dalian, 116026, P. R. China.
Key Laboratory of Physics and Technology for Advanced Batteries (Ministry of Education), College of Physics, Jilin University, Changchun, 130012, P. R. China.
Chempluschem. 2020 Sep;85(9):2129-2135. doi: 10.1002/cplu.202000330. Epub 2020 Aug 26.
Controlling morphology, adopting metal cations and introducing crystal water are three effective strategies to improve the electrochemical performance of various battery electrodes. However, the effects of simultaneously applying these three strategies to aqueous rechargeable zinc batteries (ARZBs) are rarely demonstrated. Herein, hierarchical H Al V O (HAVO) microspheres were successfully prepared using a simple hydrothermal method, and used as cathode material for ARZBs. The as-prepared HAVO microspheres exhibited superior electrochemical performance than the dehydrated AlV O (AVO) microspheres, i. e. they have a larger specific capacity of 390.4 mA h g at 100 mA g , a better rate capability of 191.4 mA h g at 5000 mA g and a higher cycling stability of up to 1000 cycles with a capacity retention of 80.9 %. The excellent electrochemical performance of HAVO is due to the synergistic effects of the shortened ion diffusion distance in primary HAVO nanosheets, the improved electronic conductivity, and structural stability by adopting Al into the lattice, the enhanced charge transfer properties and ion diffusion coefficient of the electrode due to the existence of crystal water. Therefore, this work may offer a new route for the design and synthesis of more advanced electrode materials for ARZBs.
控制形貌、引入金属阳离子和引入结晶水是提高各种电池电极电化学性能的三种有效策略。然而,将这三种策略同时应用于水系可充电锌电池(ARZBs)的效果鲜有报道。在此,采用简单的水热法成功制备了分级结构的HAlVO(HAVO)微球,并将其用作ARZBs的正极材料。所制备的HAVO微球表现出比脱水的AlVO(AVO)微球更优异的电化学性能,即在100 mA g-1时具有390.4 mA h g-1的更大比容量,在5000 mA g-1时具有191.4 mA h g-1的更好倍率性能,以及高达1000次循环且容量保持率为80.9%的更高循环稳定性。HAVO优异的电化学性能归因于初级HAVO纳米片中离子扩散距离缩短、电子导电性提高以及通过将Al引入晶格实现的结构稳定性的协同效应,以及由于结晶水的存在而增强的电极电荷转移性能和离子扩散系数。因此,这项工作可能为设计和合成更先进的ARZBs电极材料提供一条新途径。