Long Juncai, Liu Yi, He Ze, Tan Shuangshuang, Xiong Fangyu, Xu Hantao, Wang Weixiao, Zhang Ge, Yang Zhongzhuo, An Qinyou
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, P. R. China.
College of Materials Science and Engineering, Chongqing University, Chongqing 400044, P. R. China.
ACS Nano. 2024 Jun 11;18(23):15239-15248. doi: 10.1021/acsnano.4c03968. Epub 2024 May 28.
Simple magnesium (Mg) salt solutions are widely considered as promising electrolytes for next-generation rechargeable Mg metal batteries (RMBs) owing to the direct Mg storage mechanism. However, the passivation layer formed on Mg metal anodes in these electrolytes is considered the key challenge that limits its applicability. Numerous complex halogenide additives have been introduced to etch away the passivation layer, nevertheless, at the expense of the electrolyte's anodic stability and cathodes' cyclability. To overcome this dilemma, here, we design an electrolyte with a weakly coordinated solvation structure which enables passivation-free Mg deposition while maintaining a high anodic stability and cathodic compatibility. In detail, we successfully introduce a hexa-fluoroisopropyloxy (HFIP) anion into the solvation structure of Mg, the weakly [Mg-HFIP] contact ion pair facilitates Mg transportation across interfaces. As a consequence, our electrolyte shows outstanding compatibility with the RMBs. The Mg||PDI-EDA and Mg||MoS full cells use this electrolyte demonstrating a decent capacity retention of ∼80% over 400 cycles and 500 cycles, respectively. This represents a leap in cyclability over simple electrolytes in RMBs while the rest can barely cycle. This work offers an electrolyte system compatible with RMBs and brings deeper understanding of modifying the solvation structure toward practical electrolytes.
由于直接的镁存储机制,简单的镁(Mg)盐溶液被广泛认为是下一代可充电镁金属电池(RMBs)有前景的电解质。然而,在这些电解质中镁金属阳极上形成的钝化层被认为是限制其适用性的关键挑战。已经引入了许多复杂的卤化物添加剂来蚀刻掉钝化层,然而,这是以牺牲电解质的阳极稳定性和阴极循环性能为代价的。为了克服这一困境,在此,我们设计了一种具有弱配位溶剂化结构的电解质,该结构能够实现无钝化的镁沉积,同时保持高阳极稳定性和阴极兼容性。详细地说,我们成功地将六氟异丙氧基(HFIP)阴离子引入到镁的溶剂化结构中,弱的[Mg-HFIP]接触离子对促进了镁跨界面的传输。因此,我们的电解质与RMBs表现出出色的兼容性。Mg||PDI-EDA和Mg||MoS全电池使用这种电解质,分别在400次循环和500次循环中表现出约80%的良好容量保持率。这代表了与RMBs中的简单电解质相比循环性能的飞跃,而其他电解质几乎无法循环。这项工作提供了一种与RMBs兼容的电解质系统,并对朝着实用电解质修改溶剂化结构有了更深入的理解。