硼酸三烯丙酯作为锂离子电池隔板/阴极间相改性剂的研究

IF 2.2 4区 工程技术 Q3 ELECTROCHEMISTRY Journal of electrochemical science and technology Pub Date : 2023-06-08 DOI:10.33961/jecst.2023.00150
Ha Neul Kim, Hyeonho Lee, Taeeun Yim
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引用次数: 0

摘要

富镍层状氧化物阴极由于具有良好的能量密度,近年来作为一种先进的阴极材料受到了广泛的关注。然而,随着层状位置Ni成分的增加,Ni 4+的高反应性导致与分解电解质相关的寄生反应,导致电池寿命迅速降低。电解质添加剂硼酸三烯丙酯(TAB)提高了界面稳定性,在LNCM83阴极上形成了稳定的阴极-电解质界面(CEI)层。多功能化TAB添加剂可以通过电化学氧化生成均匀分布的CEI层,从而提高了长期循环性能。经100次高温循环后,使用0.75 TAB测试的电池保留了88.3%的保留率,而使用无TAB电解质测试的电池保留了64.1%的保留率。TAB添加剂一旦在LNCM83阴极上形成CEI层,除了抑制阴极上过渡金属成分的溶解外,还抑制了碳酸盐基溶剂的分解。在LNCM83正极材料中添加TAB被认为是一种很有前途的提高电化学性能的方法。
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Triallyl Borate as an Effective Separator/Cathode Interphase Modifier for Lithium-ion Batteries
Ni-rich layered oxides cathode has recently gained attention as an advanced cathode material due to their applicable energy density. However, as the Ni component in the layered site is increased, the high reactivity of Ni 4+ results in parasitic reaction associated with decomposing electrolyte, which leads to a rapid decreasing the lifespan of the cell. The electrolyte additive triallyl borate (TAB) improves interfacial stability, leading to a stable cathode–electrolyte interphase (CEI) layer on the LNCM83 cathode. A multi-functionalized TAB additive can produce a uniformly distributed CEI layer via electrochemical oxidation, which implies an increase in long-term cycling performance. After 100 cycles at elevated temperature, the cell tested by 0.75 TAB retained 88.3% of its retention ratio, whereas the cell performed by TAB-free electrolyte retained 64.1% of its retention. Once the TAB additive formed CEI layers on the LNCM83 cathode, it inhibited the decomposition of car-bonate-based solvents species in addition to the dissolution of transition metal components from the cathode. The addition of TAB to LNCM83 cathode material is believed to be a promising way to increase the electrochemical performance.
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来源期刊
CiteScore
6.30
自引率
8.10%
发文量
44
期刊介绍: Covering fields: - Batteries and Energy Storage - Biological Electrochemistry - Corrosion Science and Technology - Electroanalytical Chemistry and Sensor Technology - Electrocatalysis - Electrochemical Capacitors & Supercapcitors - Electrochemical Engineering - Electrodeposition and Surface Treatment - Environmental Science and Technology - Fuel Cells - Material Electrochemistry - Molecular Electrochemistry and Organic Electrochemistry - Physical Electrochemistry - Solar Energy Conversion and Photoelectrochemistry
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