Xinhua Zheng , Ruihao Luo , Zaichun Liu , Mingming Wang , Muhammad Sajid , Zehui Xie , Jifei Sun , Kui Xu , Li Song , Yuan Yuan , Taoli Jiang , Shuang Liu , Na Chen , Wei Chen
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引用次数: 0
Abstract
The next-generation high-performance batteries for large-scale energy storage should meet the requirements of low cost, high safety, long life and reasonable energy density. Here, we report a practical Ah-level zinc-bromine (Zn-Br2) pouch cell, which operates stably over 3400 h at 100 % depth of discharge and shows an attractive energy density of 76 Wh kg−1. The Zn-Br2 battery is achieved by in-situ electrolyte dynamic stabilizer (EDS) regulation using quaternary ammonium salts on both solid bromine cathode and Zn anode chemistries, whose energy storage mechanisms are comprehensively revealed through in-situ optical microscopy, electrochemical analyses, and simulations. The EDS prevents bromine cathodes from dissolution and diffusion into electrolyte while regulating uniform Zn nucleation and plating through electrostatic shielding. Benefiting from the EDS regulation, the bromine cathode displays a high areal capacity of 40 mAh cm−2 and can stably operate for 1200 cycles at an areal capacity of 15 mAh cm−2. The Zn anode exhibits excellent performance with dendrite-free Zn plating/stripping at a high areal capacity of 100 mAh cm−2 for 400 h and at 10 mAh cm−2 over 1500 h in an anode-free electrode design. The excellent performance of our Zn-Br2 batteries opens up new opportunities for practical large-scale energy storage applications.
期刊介绍:
Materials Today is the leading journal in the Materials Today family, focusing on the latest and most impactful work in the materials science community. With a reputation for excellence in news and reviews, the journal has now expanded its coverage to include original research and aims to be at the forefront of the field.
We welcome comprehensive articles, short communications, and review articles from established leaders in the rapidly evolving fields of materials science and related disciplines. We strive to provide authors with rigorous peer review, fast publication, and maximum exposure for their work. While we only accept the most significant manuscripts, our speedy evaluation process ensures that there are no unnecessary publication delays.