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利用亲锂纳米晶种原位构建高效界面层用于无枝晶且低氮/磷比锂金属电池

In Situ Construction of Efficient Interface Layer with Lithiophilic Nanoseeds toward Dendrite-Free and Low N/P Ratio Li Metal Batteries.

作者信息

Luo Lingli, Xia Shuixin, Zhang Xun, Yang Junhe, Zheng Shiyou

机构信息

School of Materials Science & Engineering, University of Shanghai for Science and Technology, Shanghai, 200093, China.

Ganjiang Innovation Academy, Chinese Academy of Sciences, Ganzhou, 341000, China.

出版信息

Adv Sci (Weinh). 2022 Mar;9(8):e2104391. doi: 10.1002/advs.202104391. Epub 2022 Jan 25.

Abstract

Li metal is considered as one of the most promising candidates for constructing advanced high-energy energy storage due to its ultrahigh theoretical capacity and lowest electrochemical potential. However, its practical commercialization is seriously hindered by the challenges of Li dendrite growth, low Coulombic efficiency, and huge volumetric variation. Herein, an efficient in situ generated Li S-rich interface layer joint with preplanted Sb nano active sites in hosted Li metal anode is easily achieved with the nanosized Sb S decorated carbonaceous network. The yielded CC@Sb S @Li anode demonstrates uniform Li deposition, high Coulombic efficiency, and alleviated volumetric variation. Therefore, the Li symmetric cells show ultralong lifespan stable cycling over 3200 cycles with a very low voltage hysteresis (≈18 mV) at 5 mA cm . Impressively, the Li|LiFePO full cell delivers an exceptionally prolonged cycling over 180 cycles with a superior capacity retention as high as ≈90% even under the harsh condition of an extremely low negative to positive capacity ratio of ≈0.44 with lean electrolyte (4.4 µL mAh ). Moreover, the Li|LiNi Co Mn O full cell also maintains an excellent cycling performance under the more realistic harsh conditions. This work provides a new avenue and significant step paving the Li metal toward the practical application.

摘要

锂金属因其超高的理论容量和最低的电化学电位,被认为是构建先进高能储能的最有前途的候选材料之一。然而,锂枝晶生长、低库仑效率和巨大的体积变化等挑战严重阻碍了其实际商业化。在此,通过纳米尺寸的Sb₂S₃修饰的碳质网络,在宿主锂金属阳极中轻松实现了一种高效的原位生成的富含Li-S的界面层与预植入的Sb纳米活性位点的结合。所得的CC@Sb₂S₃@Li阳极表现出均匀的锂沉积、高库仑效率和减轻的体积变化。因此,锂对称电池在5 mA cm⁻²的电流密度下,显示出超过3200次循环的超长寿命稳定循环,且电压滞后非常低(≈18 mV)。令人印象深刻的是,Li|LiFePO₄全电池即使在极低的负正容量比(≈0.44)和贫电解质(4.4 μL mAh⁻¹)的苛刻条件下,也能提供超过180次循环的超长循环寿命,且具有高达≈90%的优异容量保持率。此外,Li|LiNi₀.₈Co₀.₁Mn₀.₁O₂全电池在更实际的苛刻条件下也保持了优异的循环性能。这项工作为锂金属走向实际应用提供了一条新途径和重要的一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51d8/8922099/2e0914883888/ADVS-9-2104391-g001.jpg

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