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Covalent grafting interface engineering to prepare highly efficient and stable polypropylene/mesoporous SiO_2 separator for Li-ion batteries

机译:共价接枝界面工程,为锂离子电池制备高效稳定的聚丙烯/介孔SiO_2分离器

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Due to the deficiency of low melting point and poor wettability of commercial polyolefin separators, the design and development of ceramic coating separators have been received more and more attention in Li-ion batteries recently. However, it is challenging to solve the disadvantageous exfoliation issue of ceramic coating during charge/discharge cycles and needs to be addressed urgently. Herein, a covalent grafting interface engineering strategy has been proposed to prepare a highly efficient and stable polypropylene/mSiO(2) separator (PP-g-mSiO(2)) by the nanoscale mSiO(2) layer anchoring on the surface of PP separator with covalent bonding. As expected, the covalent bonding force increase the interfacial stability of PP-g-mSiO(2) separator and the mSiO(2) NPs facilitate more storage of electrolyte, which results in high thermal stability, high electrolyte affinity and swift lithium-ion diffusion. When used as the separator in LIBs, the Li/LiFePO4 cell with PP-g-mSiO(2) separator exhibits excellent rate capability with a discharge capacity of 101 mA h/g at 5 C and remains high capacity retention of 93% after 1000 continuous charge-discharge cycles, which suggests that the PP-g-mSiO(2) separator possesses a stable and covalent grafting ceramic surface and have greater affinity to electrolyte, resulting in quicker lithium-ion diffusion and excellent cycling stability. Therefore, the covalent grafting interface modification has confirmed an effective strategy to block exfoliation issues of ceramic coating and developed the high-performance ceramic separators for LIBs.
机译:由于低熔点缺乏,商业聚烯烃分离器的较差差,最近在锂离子电池中越来越多地接受了陶瓷涂层分离器的设计和开发。然而,解决充电/放电循环期间陶瓷涂层的不利剥离问题是挑战性,并且需要紧急地解决。在此,已经提出了一种共价接枝界面工程策略,用于制备高效且稳定的聚丙烯/ MSIO(2)分离器(2)层锚固在PP分离器表面上的纳米级MSIO(2)层具有共价键合。如预期的那样,共价键合力增加了PP-G-MSIO(2)分离器的界面稳定性,MSIO(2)NPS促进更多的电解质储存,这导致高热稳定性,高电解质亲和力和SWIFT锂离子扩散。当用作LIB中的分离器时,具有PP-G-MSIO(2)分离器的LI / LifePO4电池具有优异的速率能力,放电容量为101mA H / g在5℃,仍然高容量保留为1000后93%连续充电 - 放电循环,表明PP-G-MSIO(2)分离器具有稳定且共价接枝陶瓷表面,并具有更大的对电解质的亲和力,从而产生更快的锂离子扩散和优异的循环稳定性。因此,共价接枝界面改性已经证实了阻断陶瓷涂层的剥离问题的有效策略,并开发了Libs的高性能陶瓷分离器。

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