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由钛硅氧烷涂层实现的高性能硅电极。

High performance silicon electrode enabled by titanicone coating.

作者信息

Huertas Zahilia Cabán, Settipani Daniel, Flox Cristina, Morante Joan Ramon, Kallio Tanja, Biendicho Jordi Jacas

机构信息

Aalto University, Kemistintie 1, 02150, Espoo, Finland.

Catalonia Institute for Energy Research, Jardins de les Dones de Negre 1, 2ª p., 08930, Barcelona, Spain.

出版信息

Sci Rep. 2022 Jan 7;12(1):137. doi: 10.1038/s41598-021-04105-x.

Abstract

This paper presents the electrochemical performance and characterization of nano Si electrodes coated with titanicone (TiGL) as an anode for Li ion batteries (LIBs). Atomic layer deposition (ALD) of the metal combined with the molecular layer deposition (MLD) of the organic precursor is used to prepare coated electrodes at different temperatures with improved performance compared to the uncoated Si electrode. Coated electrodes prepared at 150 °C deliver the highest capacity and best current response of 1800 mAh g at 0.1 C and 150 mAh g at 20 C. This represented a substantial improvement compared to the Si baseline which delivers a capacity of 1100 mAh g at 0.1 C but fails to deliver capacity at 20 C. Moreover, the optimized coated electrode shows an outstanding capacity of 1200 mAh g at 1 C for 350 cycles with a capacity retention of 93%. The improved discharge capacity, electrode efficiencies, rate capability and electrochemical stability for the Si-based electrode presented in this manuscript are directly correlated to the optimized TiGL coating layer deposited by the ALD/MLD processes, which enhances lithium kinetics and electronic conductivity as demonstrated by equivalent circuit analysis of low frequency impedance data and conductivity measurements. The coating strategy also stabilizes SEI film formation with better Coulombic efficiencies (CE) and improves long cycling stability by reducing capacity lost.

摘要

本文介绍了涂有钛有机化合物(TiGL)的纳米硅电极作为锂离子电池(LIBs)阳极的电化学性能和表征。采用金属的原子层沉积(ALD)与有机前驱体的分子层沉积(MLD)相结合的方法,在不同温度下制备涂覆电极,与未涂覆的硅电极相比,其性能有所提高。在150°C下制备的涂覆电极在0.1C时具有1800 mAh/g的最高容量和最佳电流响应,在20C时为150 mAh/g。与硅基线相比,这有了显著改善,硅基线在0.1C时的容量为1100 mAh/g,但在20C时无法提供容量。此外,优化后的涂覆电极在1C下循环350次时,容量为1200 mAh/g,容量保持率为93%,表现出出色的性能。本文中提出的硅基电极的放电容量、电极效率、倍率性能和电化学稳定性的提高,与通过ALD/MLD工艺沉积的优化TiGL涂层直接相关,低频阻抗数据的等效电路分析和电导率测量表明,该涂层增强了锂动力学和电子导电性。该涂层策略还通过更好的库仑效率(CE)稳定了SEI膜的形成,并通过减少容量损失提高了长循环稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e04e/8741799/64bf625a36e5/41598_2021_4105_Fig1_HTML.jpg

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