Ma Jian, Yu Mengyue, Huang Minghao, Wu Yueyue, Fu Chengyu, Dong Lei, Zhu Zhendong, Zhang Le, Zhang Zheng, Feng Xuyong, Xiang Hongfa
School of Materials Science and Engineering, Anhui Provincial Key Laboratory of Advanced Functional Materials and Devices, Hefei University of Technology, Hefei, Anhui, 230009, P. R. China.
Hefei Gotion High-Tech Power Energy Co., Ltd, Hefei, Anhui, 230012, P. R. China.
Small. 2024 Feb;20(5):e2305649. doi: 10.1002/smll.202305649. Epub 2023 Sep 26.
In situ polymerization to prepare quasi-solid electrolyte has attracted wide attentions for its advantage in achieving intimate electrode-electrolyte contact and the high process compatibility with current liquid batteries; however, gases can be generated during polymerization process and remained in the final electrolyte, severely impairing the electrolyte uniformity and electrochemical performance. In this work, an in situ polymerized poly(vinylene carbonate)-based quasi-solid electrolyte for high-voltage sodium metal batteries (SMBs) is demonstrated, which contains a novel multifunctional additive N-methyl-N-(trimethylsilyl)trifluoroacetamide (MSTFA). MSTFA as high-efficient plasticizer diminishes residual gases in electrolyte after polymerization; the softer and homogeneous electrolyte enables much faster ionic conduction. The HF/H O scavenge effect of MSTFA mitigates the corrosion of free acid to cathode and interfacial passivating layers, enhancing the cycle stability under high voltage. As a result, the 4.4 V Na||Na V (PO ) F cell employing the optimized electrolyte possesses an initial discharge capacity of 112.0 mAh g and a capacity retention of 91.3% after 100 cycles at 0.5C, obviously better than those of its counterparts without MSTFA addition. This work gives a pioneering study on the gas residue phenomenon in in situ polymerized electrolytes, and introduces a novel multifunctional silane additive that effectively enhances electrochemical performance in high-voltage SMBs, showing practical application significance.
原位聚合制备准固态电解质因其在实现电极与电解质紧密接触以及与当前液体电池具有高工艺兼容性方面的优势而备受关注;然而,聚合过程中会产生气体并残留在最终电解质中,严重损害电解质的均匀性和电化学性能。在这项工作中,展示了一种用于高压钠金属电池(SMB)的原位聚合聚碳酸亚乙烯酯基准固态电解质,其包含一种新型多功能添加剂N - 甲基 - N -(三甲基硅基)三氟乙酰胺(MSTFA)。MSTFA作为高效增塑剂减少了聚合后电解质中的残留气体;更柔软且均匀的电解质使离子传导更快。MSTFA的HF/H₂O清除作用减轻了游离酸对阴极和界面钝化层的腐蚀,提高了高压下的循环稳定性。结果,采用优化电解质的4.4 V Na||Na₃V₂(PO₄)₃F电池在0.5C下初始放电容量为112.0 mAh g,100次循环后容量保持率为91.3%,明显优于未添加MSTFA的同类电池。这项工作对准原位聚合电解质中的气体残留现象进行了开创性研究,并引入了一种新型多功能硅烷添加剂,有效提高了高压SMB中的电化学性能,具有实际应用意义。