Deng Xiaoyu, Li Yongpeng, Li Lv, Qiao Shaoming, Lei Da, Shi Xiaoshan, Zhang Fengxiang
School of Chemical Engineering, Dalian University of Technology, Panjin 124221, People's Republic of China.
State Key Laboratory of Fine Chemicals, Dalian University of Technology, Dalian 116024, People's Republic of China.
Nanotechnology. 2021 Apr 16;32(27). doi: 10.1088/1361-6528/abf211.
Lithium-sulfur batteries (LSBs) have gained intense research enthusiasm due to their high energy density. Nevertheless, the 'shuttle effect' of soluble polysulfide (a discharge product) reduces their cycling stability and capacity, thus restricting their practical application. To tackle this challenging issue, we herein report a sulfonated covalent organic framework modified separator (SCOF-Celgard) that alleviates the shuttling of polysulfide anions and accelerates the migration of Liions. Specifically, the negatively charged sulfonate can inhibit the same charged polysulfide anion through electrostatic repulsion, thereby improving the cycle stability of the battery and preventing the Li-anode from being corroded. Meanwhile, the sulfonate groups may facilitate the positively charged lithium ions to pass through the separator. Consequently, the battery assembled with the SCOF-Celgard separator exhibits an 81.1% capacity retention after 120 cycles at 0.5 C, which is far superior to that (55.7%) of the battery with a Celgard separator. It has a low capacity degradation of 0.067% per cycle after 600 cycles at 1 C, and a high discharge capacity (576 mAh g) even at 2 C. Our work proves that the modification of a separator with a SCOF is a viable and effective route for enhancing the electrochemical performance of a LSB.
锂硫电池(LSB)因其高能量密度而受到广泛的研究关注。然而,可溶性多硫化物(一种放电产物)的“穿梭效应”降低了其循环稳定性和容量,从而限制了它们的实际应用。为了解决这一具有挑战性的问题,我们在此报告一种磺化共价有机框架修饰隔膜(SCOF-Celgard),它可以减轻多硫化物阴离子的穿梭并加速锂离子的迁移。具体而言,带负电荷的磺酸根可以通过静电排斥作用抑制带相同电荷的多硫化物阴离子,从而提高电池的循环稳定性并防止锂负极被腐蚀。同时,磺酸根基团可能有助于带正电荷的锂离子穿过隔膜。因此,采用SCOF-Celgard隔膜组装的电池在0.5 C下经过120次循环后容量保持率为81.1%,远优于使用Celgard隔膜的电池(55.7%)。在1 C下经过600次循环后,其每循环的容量降解率低至0.067%,即使在2 C时也具有较高的放电容量(576 mAh g)。我们的工作证明,用SCOF修饰隔膜是提高锂硫电池电化学性能的一种可行且有效的途径。