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Microporous Cyclodextrin Film with Funnel-type Channel Polymerized on Electrospun Cellulose Acetate Membrane as Separators for Strong Trapping Polysulfides and Boosting Charging in Lithium-Sulfur Batteries
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作者 Shuanglin Wu Jiayi Shi +4 位作者 Xiaolin Nie yingmei yao Feng Jiang Qufu Wei Fenglin Huang 《Energy & Environmental Materials》 SCIE EI CAS CSCD 2023年第2期90-99,共10页
The“shuttle effect”of polysulfides hampers the commercialization of lithium-sulfur(Li-S)batteries.Here,a thin molecular sieve film was decorated on the surface of an electrospun cellulose acetate(CA)membrane derived... The“shuttle effect”of polysulfides hampers the commercialization of lithium-sulfur(Li-S)batteries.Here,a thin molecular sieve film was decorated on the surface of an electrospun cellulose acetate(CA)membrane derived from recycled cigarette filters,where the truncated cone structureβ-cyclodextrin(β-CD)was selected as the building block to physically block and chemically trap polysulfides while simultaneously dramatically speeding up ion transport.Furthermore,on theβ-CD free side of the separator facing the cathode,graphite carbon(C)was sputtered as an upper current collector,which barely increases the thickness.These benefits result in an initial discharge performance of 1378.24 mAh g^(−1) and long-term cycling stability of 863.78 mAh g^(−1) after 1000 cycles at 0.2 C for the battery with theβ-CD/CA/C separator,which is more than three times that of the PP separator after 500 cycles.Surprisingly,the funnel-type channel ofβ-CD generates a differential ionic fluid pressure on both sides,speeding up ion transport by up to 69%,and a 65.3%faster charging rate of 9484 mA g^(−1) was achieved.The“funnel effect”of a separator is regarded as a novel and high-efficiency solution for fast charging of Li-S and other lithium secondary batteries. 展开更多
关键词 cellulose acetate fast charging magnetron deposition separator trapping polysulfides
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环糊精改性聚丙烯膜及其在锂硫电池中的应用
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作者 姚莹梅 武双林 +1 位作者 余彦婷 黄锋林 《高分子材料科学与工程》 EI CAS CSCD 北大核心 2022年第1期153-158,共6页
以聚丙烯(PP)为基底膜,利用常温等离子体对其进行亲水性改性,环糊精作为分子筛涂层对其进行修饰,以其作为锂硫电池隔膜,可实现对多硫化物的有效阻碍,提高锂硫电池比容量及循环稳定性。对修饰隔膜的表观形貌、孔隙率、电解液亲和性、对... 以聚丙烯(PP)为基底膜,利用常温等离子体对其进行亲水性改性,环糊精作为分子筛涂层对其进行修饰,以其作为锂硫电池隔膜,可实现对多硫化物的有效阻碍,提高锂硫电池比容量及循环稳定性。对修饰隔膜的表观形貌、孔隙率、电解液亲和性、对多硫化物扩散的抑制效果,以及在锂硫电池中的电化学性能等进行了表征。结果显示,修饰隔膜的孔隙率达53.79%,高于商业隔膜58.02%。多硫化物扩散实验进一步表明,环糊精分子筛涂层修饰的隔膜可以有效抑制多硫化物的穿梭效应。改性隔膜在0.2C电流密度时,初始放电比容量达1275.89 mAh/g,200次循环后放电比容量达916.69mAh/g,显示出优异的电化学性能。 展开更多
关键词 环糊精分子筛 聚丙烯 锂硫电池隔膜 多硫化物
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