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通过定制溶剂化结构提高双电极兼容性,实现高性能低温锂||磷酸铁锂电池。

Improving dual electrodes compatibility through tailoring solvation structures enabling high-performance and low-temperature Li||LiFePO batteries.

作者信息

Chen Yuzhi, Ma Boliang, Wang Qingchuan, Liu Limin, Wang Luyao, Ding Shujiang, Yu Wei

机构信息

School of Chemistry, Engineering Research Center of Energy Storage Materials and Devices, Ministry of Education, "Four Joint Subjects One Union" School-Enterprise Joint Research Center for Power Battery Recycling & Circulation Utilization Technology, Xi'an Jiaotong University, Xi'an 710049, China.

School of Chemistry, Engineering Research Center of Energy Storage Materials and Devices, Ministry of Education, "Four Joint Subjects One Union" School-Enterprise Joint Research Center for Power Battery Recycling & Circulation Utilization Technology, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

J Colloid Interface Sci. 2024 Jan 15;654(Pt A):550-558. doi: 10.1016/j.jcis.2023.10.064. Epub 2023 Oct 14.

Abstract

Li||LiFePO (LFP) batteries have good stability and high energy density. However, they exhibit unsatisfactory low-temperature electrochemical performance. Due to the fragile interfacial passivation layers and sluggish kinetics, commercial electrolytes fail to simultaneously achieve acceptable stabilization with dual electrodes in low-temperature Li||LFP batteries. Herein, a novel localized high-concentration electrolyte (LHCE) with great dual-electrodes compatibility is proposed to match with the low-temperature Li||LFP batteries. With increasing local concentration, the FSI sequentially replaces the solvent molecules and enters the first solvation sheath, forming the anion-dominated solvation structures. This effectively suppresses free solvents decomposition and constructs the anion-derived passivation layers with inorganic-rich components, further contributing to the rapid transport kinetics and endowing the LHCE with great dual electrodes compatibility. These dual-electrodes co-stabilization effects of the LHCE are originally clarified in the low-temperature Li||LFP batteries. The designed LHCE also delivers low freezing point (-99.8 ℃), high ionic conductivity (2.4 mS cm at -40 ℃), and superior stability (>4.7 V vs. Li/Li). Hence, the Li||LFP batteries with LHCE possess superb cyclic stability at low temperatures, delivering a high discharge capacity of 120 mAh g over 300 cycles at -20 ℃. Moreover, compared to commercial electrolytes, LHCE endows the Li||LFP batteries with superior low-temperature performances under practical conditions, including limited Li anode (3 mAh cm) and a wide temperature range (30 ℃ to -40 ℃).

摘要

锂||磷酸铁锂(LFP)电池具有良好的稳定性和高能量密度。然而,它们的低温电化学性能却不尽人意。由于界面钝化层脆弱且动力学缓慢,商用电解质无法在低温锂||LFP电池中同时实现与双电极的可接受的稳定性。在此,提出了一种具有优异双电极兼容性的新型局部高浓度电解质(LHCE),以匹配低温锂||LFP电池。随着局部浓度的增加,双(三氟甲基磺酰)亚胺阴离子(FSI)依次取代溶剂分子并进入第一溶剂化鞘层,形成以阴离子为主导的溶剂化结构。这有效地抑制了游离溶剂的分解,并构建了富含无机成分的阴离子衍生钝化层,进一步促进了快速传输动力学,并赋予LHCE优异的双电极兼容性。LHCE的这些双电极共稳定作用最初在低温锂||LFP电池中得到阐明。所设计的LHCE还具有低冰点(-99.8℃)、高离子电导率(-40℃下为2.4 mS cm)和优异的稳定性(相对于Li/Li对>4.7 V)。因此,采用LHCE的锂||LFP电池在低温下具有出色的循环稳定性,在-20℃下300次循环中可提供120 mAh g的高放电容量。此外,与商用电解质相比,LHCE在实际条件下赋予锂||LFP电池优异的低温性能,包括有限的锂阳极(3 mAh cm)和较宽的温度范围(30℃至-40℃)。

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