School of Chemical and Pharmaceutical Science, Guangxi Normal University , Guilin 541004, China.
Guangxi Key Laboratory of Low Carbon Energy Materials, Guangxi Normal University , Guilin 541004, Chain.
ACS Appl Mater Interfaces. 2017 Sep 27;9(38):33274-33287. doi: 10.1021/acsami.7b08828. Epub 2017 Sep 18.
The performance of CEI and SEI configuration and formation mechanism on the cathode and anode side for LiNiMnO/natural graphite (LNMO/NG) batteries is investigated, where series permutations of the NG electrodes modified with TEOS species as the anode for the LNMO full cells. It is believed that the excellent long-term cycling performance of LNMO/NG full cells at the high voltage is a result of alleviating the devastated reaction to form the CEI and SEI on the both electrodes with electrolyte, respectively. At a voltage range from 3.4 to 4.8 V for the LNMO full cells, 95.0% capacity retention after 100 cycles is achieved when cycled with TEOS-modifying NG anode. This mechanism may be explained that eliminating the HF and absorbing water impurities in the electrolyte by introducing the TEOS group, which can transform the SiO species that react with the acid of HF at the organic solvent environment instead of destroying/forming the anode SEI and attacking the LNMO spinel structure to form the dense and high resistance CEI, meanwhile the SiO species will absorb the water molecule and precipitate into the anode surface further stabilizing the SEI configuration during the cycling.
研究了 LNMO/natural graphite(LNMO/NG)电池阴极和阳极侧的 CEI 和 SEI 结构和形成机制,其中 NG 电极经过 TEOS 物种修饰后作为 LNMO 全电池的阳极进行串联排列。据信,LNMO/NG 全电池在高压下具有优异的长期循环性能,是由于分别缓解了电解质在两个电极上形成 CEI 和 SEI 的灾难性反应。在 LNMO 全电池的电压范围为 3.4 至 4.8 V 时,当用经过 TEOS 修饰的 NG 阳极循环时,经过 100 次循环后可获得 95.0%的容量保持率。该机制可以解释为,通过引入 TEOS 基团可以消除电解质中的 HF 和吸收水杂质,从而将与 HF 酸反应的 SiO 物质转化为在有机溶剂环境中反应,而不是破坏/形成阳极 SEI 并攻击 LNMO 尖晶石结构以形成致密且高电阻 CEI,同时,SiO 物质会吸收水分子并在循环过程中沉淀到阳极表面,进一步稳定 SEI 结构。