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N-烯丙基-N,N-双(三甲基硅基)胺作为一种新型电解质添加剂,可增强锂离子电池富镍电极的界面稳定性。

N-Allyl- N, N-Bis(trimethylsilyl)amine as a Novel Electrolyte Additive To Enhance the Interfacial Stability of a Ni-Rich Electrode for Lithium-Ion Batteries.

机构信息

Engineering Research Center of MTEES (Ministry of Education), Research Center of BMET (Guangdong Province), Key Lab. of ETESPG (GHEI), and Innovative Platform for ITBMD (Guangzhou Municipality), School of Chemistry and Environment , South China Normal University , Guangzhou 510006 , China.

Guangzhou Institute of Energy Testing , Guangzhou 511447 , China.

出版信息

ACS Appl Mater Interfaces. 2018 May 16;10(19):16843-16851. doi: 10.1021/acsami.8b00913. Epub 2018 May 8.

Abstract

Enhancing the electrode/electrolyte interface stability of high-capacity LiNiCoAlO (LNCA) cathode material is urgently required for its application in next-generation lithium-ion battery. Herein, we demonstrate that enhanced interfacial stability of LNCA can be achieved by simply introducing 2 wt % N-allyl- N, N-bis(trimethylsilyl)amine (NNB) electrolyte additive. Electrolyte oxidation reactions and electrode structural destruction are greatly suppressed in the electrolyte with NNB additive, leading to improved cyclic stability of LNCA from 72.8 to 86.2% after 300 cycles. The mechanism of NNB on improving the cyclic stability of LNCA has been verified to its excellent solid electrolyte interface (SEI) film-forming capability. Moreover, the X-ray diffraction and X-ray photoelectron spectroscopy results indicate that the NNB-derived Si-containing SEI film restrains the Li/Ni disorder of LNCA during cycling, which further improves the cyclic stability of Ni-rich LNCA. Importantly, the charging/discharging test reveals that the NNB additive effectively improves the cyclic stability of the LNCA/graphite full cell.

摘要

提高高容量 LiNiCoAlO(LNCA)正极材料的电极/电解质界面稳定性对于其在下一代锂离子电池中的应用至关重要。在此,我们证明通过简单引入 2wt%N-烯丙基-N,N-双(三甲基甲硅烷基)胺(NNB)电解质添加剂,可以实现 LNCA 的界面稳定性的增强。在含有 NNB 添加剂的电解质中,电解质氧化反应和电极结构破坏得到了极大抑制,从而使 LNCA 的循环稳定性从 72.8%提高到 300 次循环后的 86.2%。NNB 提高 LNCA 循环稳定性的机制已被证明与其优异的固体电解质界面(SEI)成膜能力有关。此外,X 射线衍射和 X 射线光电子能谱结果表明,NNB 衍生的含 Si 的 SEI 膜在循环过程中抑制了 LNCA 的 Li/Ni 无序,进一步提高了富镍 LNCA 的循环稳定性。重要的是,充放电测试表明 NNB 添加剂有效地提高了 LNCA/石墨全电池的循环稳定性。

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