Chemical Science and Engineering Division, Argonne National Laboratory , Lemont, Illinois, 60439, United States.
BMW Group , Munich 80788, Germany.
ACS Appl Mater Interfaces. 2017 Dec 27;9(51):44542-44549. doi: 10.1021/acsami.7b15395. Epub 2017 Dec 15.
Current developments of electrolyte additives to stabilize electrode-electrolyte interface in lithium-ion batteries highly rely on a trial-and-error search, which involves repetitive testing and intensive amount of resources. The lack of understandings on the fundamental protection mechanisms of the additives significantly increases the difficulty for the transformational development of new additives. In this study, we investigated two types of individual protection routes to build a robust cathode-electrolyte interphase at high potentials: (i) a direct reduction in the catalytic decomposition of the electrolyte solvent; and (ii) formation of a "corrosion inhibitor film" that prevents severely attack and passivation from protons that generated from the solvent oxidation, even the decomposition of solvent cannot be mitigated. Effect of two exemplary electrolyte additives, lithium difluoro(oxalato)borate (LiDFOB) and 3-hexylthiophene (3HT), on LiNiMnCoO (NMC 622) cathode were investigated to validate our hypothesis. It is demonstrated that understandings of both electrolyte additives and solvent are essential and careful balance between the cathode protection mechanism of additives and their side effects is critical to obtain optimum results. More importantly, this study opens up new directions of rational design of functional electrolyte additives for the next-generation high-energy-density lithium-ion chemistries.
目前,锂离子电池中用于稳定电极-电解质界面的电解质添加剂的发展高度依赖于反复试验的搜索,这涉及到重复的测试和大量的资源投入。由于缺乏对添加剂基本保护机制的理解,这极大地增加了新型添加剂转型发展的难度。在本研究中,我们研究了两种构建高电位下坚固的阴极-电解质界面的个体保护途径:(i)直接降低电解质溶剂的催化分解;(ii)形成“缓蚀剂膜”,防止来自溶剂氧化产生的质子的严重侵蚀和钝化,即使不能缓解溶剂的分解。研究了两种典型的电解质添加剂,双氟草酸硼酸锂(LiDFOB)和 3-己基噻吩(3HT),对 LiNiMnCoO(NMC622)阴极的影响,以验证我们的假设。结果表明,理解电解质添加剂和溶剂是至关重要的,添加剂的阴极保护机制及其副作用之间的平衡是获得最佳结果的关键。更重要的是,这项研究为下一代高能密度锂离子化学中的功能性电解质添加剂的合理设计开辟了新的方向。