首页> 外文期刊>Advanced energy materials >Cathode-Electrolyte-Interphase Film Formation on a LiNiO_2 Surface in Conventional Aqueous Electrolytes: Simple Method to Improve the Electrochemical Performance of LiNiO_2 Electrodes for Use in Aqueous Li-Ion Batteries
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Cathode-Electrolyte-Interphase Film Formation on a LiNiO_2 Surface in Conventional Aqueous Electrolytes: Simple Method to Improve the Electrochemical Performance of LiNiO_2 Electrodes for Use in Aqueous Li-Ion Batteries

机译:在常规水溶液中LINIO_2表面上的阴极电解质间膜:改善LINIO_2电极的电化学性能的简单方法,用于锂离子电池水溶液

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摘要

Passivation films, the so-called solid-electrolyte interphase and cathode-electrolyte interphase (CEI), are considered to be essential for the operation of rechargeable batteries because they have a positive impact on electrochemical performance including cyclability. In the field of aqueous Li-ion batteries (ALIBs) to date, it is generally accepted that these films can only be formed in super-concentrated electrolytes containing fluorine-based organic anions such as N(SO2CF3)(2) and SO3CF3. This study demonstrates for the first time that a CEI film can be created on a LiNiO2 (LNO) electrode in conventional aqueous electrolytes and improve electrochemical performance such as reversible capacities and cyclability. The results reveal that a CEI film, mainly composed of Li2CO3 and LiOH, is formed on the LNO surface in a saturated LiNO3 aqueous electrolyte containing LiOH beginning at the first de-intercalation of Li+ ions, suppressing side reactions between the surface and aqueous electrolyte, and improving the recovery rate of structural changes of LNO during the charge/discharge process. As a result, this study suggests that LNO has great potential for application as a cathode material for high energy density ALIBs.
机译:钝化膜,所谓的固体电解质相互作用和阴极 - 电解质相互作用(CEI)被认为是可充电电池的运行至关重要的,因为它们对包括可循环性的电化学性能具有正影响。在迄今为止的锂离子电池(Alibs)的领域中,通常可接受这些薄膜只能形成含有氟基有机束缚的超浓缩电解质,例如N(SO 2 CF 3)(2)和SO 3CF 3。该研究首次证明了CEI膜可以在常规水性电解质中的LINIO2(LNO)电极上产生并改善电化学性能,例如可逆容量和可循环性。结果表明,主要由Li 2 CO 3和LiOH组成的CEI膜在LNO 3含有LiOH的LNO表面上形成Li +离子的第一次去嵌段,抑制表面和含水电解质之间的副反应,并提高充电/放电过程中LNO结构变化的回收率。结果,该研究表明,LNO具有施加作为高能量密度和高能量密度的阴极材料的潜力。

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