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一种新型弱溶剂化电解质同时稳定锂金属电池中的固体/阴极电解质界面

Simultaneous Stabilization of the Solid/Cathode Electrolyte Interface in Lithium Metal Batteries by a New Weakly Solvating Electrolyte.

作者信息

Pham Thuy Duong, Lee Kyung-Koo

机构信息

Department of Chemistry, Kunsan National University, Gunsan, Jeonbuk, 54150, Republic of Korea.

出版信息

Small. 2021 May;17(20):e2100133. doi: 10.1002/smll.202100133. Epub 2021 Apr 1.

DOI:10.1002/smll.202100133
PMID:33797203
Abstract

So far, the practical application of Li metal batteries has been hindered by the undesirable formation of Li dendrites and low Coulombic efficiencies (CEs). Herein, 1,2-diethoxyethane (DEE) is proposed as a new electrolytic solvent for lithium metal batteries (LMBs), and the performances of 1.0 m LiFSI in DEE are evaluated. Because of the low dielectric constant and dipole moment of DEE, the majority of the FSI exists in associated states like contact ion pairs and aggregates, which is similar to the highly concentrated electrolytes. These associated complexes are involved in the reduction reaction on the Li metal anode, forming sound solid electrolyte interphase layers. Furthermore, free FSI ions in DEE are observed to participate in the formation of cathode electrolyte interphase layers. These passivation layers not only suppress dendrite growth on the Li anode but also prevent unwanted side-reactions on the LiFePO cathode. The average CE of the Li||Cu cells in LiFSI-DEE is observed to be 98.0%. Moreover, LiFSI-DEE also plays an important role in enhancing the cycling stability of the Li||LiFP cell with a capacity retention of 93.5% after 200 cycles. These results demonstrate the benefits of LiFSI-DEE, which creates new possibilities for high-energy-density rechargeable LMBs.

摘要

到目前为止,锂金属电池的实际应用受到锂枝晶形成不理想和库仑效率(CEs)较低的阻碍。在此,提出1,2 - 二乙氧基乙烷(DEE)作为锂金属电池(LMBs)的一种新型电解质溶剂,并对1.0 m LiFSI在DEE中的性能进行了评估。由于DEE的低介电常数和偶极矩,大多数FSI以缔合状态存在,如接触离子对和聚集体,这与高浓度电解质类似。这些缔合络合物参与锂金属阳极上的还原反应,形成良好的固体电解质界面层。此外,观察到DEE中的游离FSI离子参与阴极电解质界面层的形成。这些钝化层不仅抑制锂阳极上枝晶的生长,还防止LiFePO阴极上不必要的副反应。Li||Cu电池在LiFSI - DEE中的平均CE为98.0%。此外,LiFSI - DEE在提高Li||LiFP电池的循环稳定性方面也起着重要作用,在200次循环后容量保持率为93.5%。这些结果证明了LiFSI - DEE的优势,为高能量密度可充电LMBs创造了新的可能性。

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