Wang Xin, Yang Liwen, Wang Yang, Li Qian, Chen Changtao, Zhong Benhe, Chen Yanxiao, Guo Xiaodong, Wu Zhenguo, Liu Yang, Liu Yuxia, Sun Yan
College of Chemical Engineering, Sichuan University, Chengdu, 610065, PR China.
College of Chemical Engineering, Sichuan University, Chengdu, 610065, PR China.
J Colloid Interface Sci. 2022 Jan 15;606(Pt 1):666-676. doi: 10.1016/j.jcis.2021.08.062. Epub 2021 Aug 11.
Modifying separator with metal oxides has been considered as a strong strategy to inhibit the shuttling of soluble polysulfide in the lithium-sulfur battery (Li-S battery). Manganesedioxide (MnO), one kind of transition metal oxide, is widely applied to decorate the PP (Polypropylene) separator. However, the fabrication by physical coating is always multistep and complicated. Here, we design a simple and fast method to chemically decorate separator. Based on the oxidizing property of acidic KMnO solution, the PP separator was oxidized and an ultrathin self-assembled MnO layer was directly constructed on one side of separator, by immersing in acidic KMnO solution for only 1 h. The self-assembled MnO layer has the synergistic effect of adsorption and catalytic conversion on polysulfides, which can effectively inhibit the shuttle effect. It can also help battery to maintain excellent electrochemical kinetics in the electrochemical cycle and maintain the effective recycling of active substances. As a result, the shuttling of polysulfide is greatly prohibited by this novel functional separator, and cycling stability is outstandingly improved, with a low-capacity decaying of 0.058% after 500 cycles at 0.5C. The rapid and simple modification method proposed in this study has a certain reference value for the future large-scale application of lithium-sulfur battery.
用金属氧化物修饰隔膜被认为是抑制锂硫电池(Li-S电池)中可溶性多硫化物穿梭的有效策略。二氧化锰(MnO)作为一种过渡金属氧化物,被广泛用于修饰聚丙烯(PP)隔膜。然而,物理涂覆法制备过程总是多步骤且复杂的。在此,我们设计了一种简单快速的方法对隔膜进行化学修饰。基于酸性高锰酸钾溶液的氧化性,通过将PP隔膜仅浸入酸性高锰酸钾溶液1小时,隔膜被氧化,并且在其一侧直接构建了一层超薄的自组装MnO层。自组装MnO层对多硫化物具有吸附和催化转化的协同作用,能够有效抑制穿梭效应。它还能帮助电池在电化学循环中保持优异的电化学动力学,并维持活性物质的有效循环利用。结果,这种新型功能隔膜极大地抑制了多硫化物的穿梭,显著提高了循环稳定性,在0.5C下500次循环后容量衰减率低至0.058%。本研究提出的快速简便的修饰方法对锂硫电池未来的大规模应用具有一定的参考价值。