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Interface Engineering of MXene Composite Separator for High-Performance Li–Se and Na–Se Batteries

机译:用于高性能Li-SE和NA-SE电池的MXINE复合分离器的接口工程

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Selenium (Se), due to its high electronic conductivity and high energy density, has recently attracted considerable interest as a cathode material for rechargeable Li/Na batteries. However, the poor cycling stability originating from the severe shuttle effect of polyselenides hinders their practical applications. Herein, highly stable Li/Na-Se batteries are developed using ultrathin (approximate to 270 nm, loading of 0.09 mg cm(-2)) cetrimonium bromide (CTAB)/carbon nanotube (CNT)/Ti3C2Tx MXene hybrid modified polypropylene (PP) (CCNT/MXene/PP) separators. The hybrid separator can immobilize the polyselenides via enhanced Lewis acid-base interactions between CTAB/MXene and polyselenides, which is demonstrated by theoretical calculations and X-ray photoelectron spectroscopy. The incorporation of CNT helps to improve the electrolyte infiltration and facilitate the ionic transport. In situ permeation experiments are conducted for the first time to visually study the behavior of polyselenides, revealing the prohibited shuttle effect and protected Li anode from corrosion with CCNT/MXene/PP separators. As a result, the Li-Se batteries with CCNT/MXene/PP separators deliver an outstanding cycling performance over 500 cycles at 1C with an extremely low capacity decay of 0.05% per cycle. Moreover, the hybrid separators also perform well in Na-Se batteries. This study develops a preferable separator-electrolyte interface and the concept can be applied in other conversion-type battery systems.
机译:由于其高电子导电性和高能量密度,硒(SE)最近吸引了可相当兴趣的充值Li / Na电池的阴极材料。然而,循环稳定性源于多糖苷的严重梭效果阻碍了其实际应用。这里,高稳定的Li / Na-Se电池采用超薄(近似为270nm,负载0.09mg cm(-2))香脂溴(CTAB)/碳纳米管(CNT)/ Ti3C2TX MXENE杂交改性聚丙烯(PP) (CCNT / MXENE / PP)分离器。杂交分离器可以通过CTAB / MXENE和多糖苷与多糖苷酸碱基的增强的路易斯酸碱相互作用固定多糖烯烃,其通过理论计算和X射线光电子谱证明。 CNT的掺入有助于改善电解质浸润并促进离子运输。原位渗透实验是首次进行的,在目视研究多糖烯醇的行为,揭示禁止的梭效果和保护锂阳极与CCNT / MXENE / PP分离器的腐蚀。结果,具有CCNT / MXENE / PP分离器的LI-SE电池在1C下提供优异的循环性能超过500周期,每循环的极低容量衰减为0.05%。此外,杂交分离器在NA-SE电池中也表现良好。该研究开发了优选的分离器 - 电解质界面,并且该概念可以应用于其他转换型电池系统。

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