Kuo Wang, Hongtu Zhan, Wenlong Su, Xiao-Xia Liu and Xiaoqi Sun
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引用次数: 0
摘要
水电池中锌阳极的可逆性和稳定性受到枝晶生长和腐蚀反应的限制。本文采用含丰富官能团的大分子,即0.1 wt%刺槐豆胶(LBG)作为电解质添加剂,并将其引入到1 m ZnSO4中,以解决上述问题。理论计算和实验分析表明,LBG分子上多个排列的氧位点允许与Zn表面有序相互作用。同时,其余基团进入Zn2+溶剂化壳层,优化界面处的氢键网络。这些活性位点捕获并均匀化了Zn2+流向电极的通量,并改变了以下的脱溶路径。由此产生的溶剂化水更容易去除,氢键更强,抑制了副反应,最终LBG的可控去除产生了均匀的沉积物。结果表明,在1600 h内实现了锌的稳定镀/剥离。此外,该机制可以扩展到一系列浓度低于0.1 wt%的大分子胶添加剂,为锌电池提供了经济高效的水电解质。我们的工作展示了一种有序的界面调节策略,以提高高性能水性电池锌电极的稳定性。
Ordered interface regulation at Zn electrodes induced by trace gum additives for high-performance aqueous batteries†
The reversibility and stability of Zn anodes in aqueous batteries are limited by dendritic growth and corrosion reactions. Herein, a macromolecule with abundant functional groups, i.e., 0.1 wt% locust bean gum (LBG), was used as an electrolyte additive and introduced in baseline 1 m ZnSO4 to solve the above issues. Theoretical calculations and experimental analysis demonstrated that multiple aligned oxygen sites on LBG molecules allowed ordered interactions with the Zn surface. Meanwhile, the rest of the groups entered Zn2+ solvation shells and optimized the hydrogen bonding network at the interface. These active sites captured and homogenized the Zn2+ flux toward the electrode and modified the following desolvation paths. The resulting easier removal of solvated water and stronger hydrogen bonds inhibited side reactions, and the controlled removal of final LBG generated uniform deposits. As a result, stable Zn plating/stripping was achieved for 1600 h. Moreover, the mechanism could be extended to a series of macromolecular gum additives at concentrations below 0.1 wt%, presenting cost-effective aqueous electrolytes for Zn cells. Our work shows an ordered interface regulation strategy to promote the stability of Zn electrodes for high-performance aqueous batteries.
期刊介绍:
Energy & Environmental Science, a peer-reviewed scientific journal, publishes original research and review articles covering interdisciplinary topics in the (bio)chemical and (bio)physical sciences, as well as chemical engineering disciplines. Published monthly by the Royal Society of Chemistry (RSC), a not-for-profit publisher, Energy & Environmental Science is recognized as a leading journal. It boasts an impressive impact factor of 8.500 as of 2009, ranking 8th among 140 journals in the category "Chemistry, Multidisciplinary," second among 71 journals in "Energy & Fuels," second among 128 journals in "Engineering, Chemical," and first among 181 scientific journals in "Environmental Sciences."
Energy & Environmental Science publishes various types of articles, including Research Papers (original scientific work), Review Articles, Perspectives, and Minireviews (feature review-type articles of broad interest), Communications (original scientific work of an urgent nature), Opinions (personal, often speculative viewpoints or hypotheses on current topics), and Analysis Articles (in-depth examination of energy-related issues).