Yu Dandan, Wang Zhenya, Yang Jiacheng, Wang Yingyu, Li Yuting, Zhu Qiaonan, Tu Xinman, Chen Dezhi, Liang Junfei, Khalilov Umedjon, Wang Hua
Key Laboratory of Jiangxi Province for Persistent Pollutants Control and Resources Recycle, School of Environmental and Chemical Engineering, Nanchang Hangkong University, Nanchang, 330063, China.
College of Materials and Chemistry, China Jiliang University, Hangzhou, 310018, China.
Small. 2024 Jul;20(30):e2311810. doi: 10.1002/smll.202311810. Epub 2024 Feb 22.
Low-temperature operation of sodium metal batteries (SMBs) at the high rate faces challenges of unstable solid electrolyte interphase (SEI), Na dendrite growth, and sluggish Na transfer kinetics, causing a largely capacity curtailment. Herein, low-temperature and fast-charge SMBs are successfully constructed by synergetic design of the electrolyte and electrode. The optimized weak-solvation dual-salt electrolyte enables high Na plating/stripping reversibility and the formation of NaF-rich SEI layer to stabilize sodium metal. Moreover, an integrated copper sulfide electrode is in situ fabricated by directly chemical sulfuration of copper current collector with micro-sized sulfur particles, which significantly improves the electronic conductivity and Na diffusion, knocking down the kinetic barriers. Consequently, this SMB achieves the reversible capacity of 202.8 mAh g at -20 °C and 1 C (1 C = 558 mA g). Even at -40 °C, a high capacity of 230.0 mAh g can still be delivered at 0.2 C. This study is encouraging for further exploration of cryogenic alkali metal batteries, and enriches the electrode material for low-temperature energy storage.
钠金属电池(SMBs)在低温下的高倍率运行面临着固体电解质界面(SEI)不稳定、钠枝晶生长以及钠传输动力学迟缓等挑战,导致容量大幅缩减。在此,通过电解质和电极的协同设计成功构建了低温快速充电的SMBs。优化后的弱溶剂化双盐电解质实现了高的钠电镀/剥离可逆性,并形成富含NaF的SEI层以稳定金属钠。此外,通过将铜集流体与微米级硫颗粒直接进行化学硫化原位制备了集成硫化铜电极,这显著提高了电子导电性和钠扩散速率,降低了动力学障碍。因此,这种SMB在-20°C和1C(1C = 558 mA g)时实现了202.8 mAh g的可逆容量。即使在-40°C时,在0.2C下仍可提供230.0 mAh g的高容量。该研究为进一步探索低温碱金属电池提供了鼓舞,并丰富了低温储能的电极材料。