Cui Xiaosha, Zhang Yaxiong, Cheng Situo, Liu Yupeng, Shao Zhipeng, Sun Zhenheng, Wu Yin, Guo Hongzhou, Fu Jiecai, Xie Erqing
Key Laboratory for Magnetism and Magnetic Materials of the Ministry of Education, School of Physical Science and Technology, Lanzhou University, Lanzhou 730000, China.
Key Laboratory for Magnetism and Magnetic Materials of the Ministry of Education, School of Physical Science and Technology, Lanzhou University, Lanzhou 730000, China.
J Colloid Interface Sci. 2022 Aug 15;620:127-134. doi: 10.1016/j.jcis.2022.04.004. Epub 2022 Apr 6.
The mild electrolyte working environment of rechargeable aqueous Zn-ion batteries (AZIBs) features its promising characteristic and potential application for large-scale energy storage system. However, the poor cycling stability significantly hinders the broad application of AZIBs due to the complex electrochemical conversion reactions during charge-discharge process. Herein, we propose a strategy to improve the electrochemical performance of AZIB by enhancing the successive electrochemical conversion reactions. With a rational design of electrode, an even homogeneous electric field can be achieved in the cathode side, resulting to significantly enhanced efficiency of successive electrochemical conversion reactions. Charge storage mechanism studies reveal that the reversibility behaviors of byproducts alkaline zinc sulfate (ZHS) can dramatically determine the H/Zn de/intercalation process, and a high reversibility characteristic ensures the facilitated electrochemical kinetics. As expected, the resultant AZIB possesses outstanding electrochemical performance with a high specific capacity of 425.08 mAh⋅g at 0.1 A⋅g, an excellent rate capacity of about 60% (246.6 mAh⋅g at 1 A⋅g) and superior cycling stability of 93.7% after 3000 cycles (at 3 A⋅g). This effective strategy and thinking proposed here may open a new avenue for the development of high-performing AZIBs.
可充电水系锌离子电池(AZIBs)温和的电解质工作环境使其具有良好的特性及在大规模储能系统中的潜在应用价值。然而,由于充放电过程中复杂的电化学转化反应,较差的循环稳定性严重阻碍了AZIBs的广泛应用。在此,我们提出一种通过增强连续电化学转化反应来提高AZIBs电化学性能的策略。通过合理设计电极,可在阴极侧实现均匀的电场,从而显著提高连续电化学转化反应的效率。电荷存储机制研究表明,副产物碱式硫酸锌(ZHS)的可逆行为可极大地决定H/Zn的脱嵌过程,而高可逆性特性确保了有利的电化学动力学。正如预期的那样,所得的AZIBs具有出色的电化学性能,在0.1 A·g时具有425.08 mAh·g的高比容量,在1 A·g时具有约60%(246.6 mAh·g)的优异倍率容量,在3000次循环后(3 A·g)具有93.7%的卓越循环稳定性。本文提出的这种有效策略和思路可能为高性能AZIBs的发展开辟一条新途径。