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耦合原位显微镜和相场建模的石墨电极中充电和镀覆的多尺度动力学

Multiscale dynamics of charging and plating in graphite electrodes coupling operando microscopy and phase-field modelling.

作者信息

Lu Xuekun, Lagnoni Marco, Bertei Antonio, Das Supratim, Owen Rhodri E, Li Qi, O'Regan Kieran, Wade Aaron, Finegan Donal P, Kendrick Emma, Bazant Martin Z, Brett Dan J L, Shearing Paul R

机构信息

Electrochemical Innovation Lab, Department of Chemical Engineering, UCL, London, WC1E 7JE, UK.

The Faraday Institution, Quad One, Harwell Science and Innovation Campus, Didcot, OX11 0RA, UK.

出版信息

Nat Commun. 2023 Aug 24;14(1):5127. doi: 10.1038/s41467-023-40574-6.

Abstract

The phase separation dynamics in graphitic anodes significantly affects lithium plating propensity, which is the major degradation mechanism that impairs the safety and fast charge capabilities of automotive lithium-ion batteries. In this study, we present comprehensive investigation employing operando high-resolution optical microscopy combined with non-equilibrium thermodynamics implemented in a multi-dimensional (1D+1D to 3D) phase-field modeling framework to reveal the rate-dependent spatial dynamics of phase separation and plating in graphite electrodes. Here we visualize and provide mechanistic understanding of the multistage phase separation, plating, inter/intra-particle lithium exchange and plated lithium back-intercalation phenomena. A strong dependence of intra-particle lithiation heterogeneity on the particle size, shape, orientation, surface condition and C-rate at the particle level is observed, which leads to early onset of plating spatially resolved by a 3D image-based phase-field model. Moreover, we highlight the distinct relaxation processes at different state-of-charges (SOCs), wherein thermodynamically unstable graphite particles undergo a drastic intra-particle lithium redistribution and inter-particle lithium exchange at intermediate SOCs, whereas the electrode equilibrates much slower at low and high SOCs. These physics-based insights into the distinct SOC-dependent relaxation efficiency provide new perspective towards developing advanced fast charge protocols to suppress plating and shorten the constant voltage regime.

摘要

石墨负极中的相分离动力学显著影响锂金属沉积倾向,这是损害汽车锂离子电池安全性和快速充电能力的主要降解机制。在本研究中,我们采用原位高分辨率光学显微镜结合在多维(1D+1D至3D)相场建模框架中实现的非平衡热力学进行了全面研究,以揭示石墨电极中相分离和沉积的速率依赖空间动力学。在这里,我们可视化并提供了对多阶段相分离、沉积、颗粒间/颗粒内锂交换和沉积锂反向嵌入现象的机理理解。在颗粒水平上观察到颗粒内锂化不均匀性对颗粒尺寸、形状、取向、表面条件和C倍率有强烈依赖性,这导致通过基于3D图像的相场模型在空间上分辨出早期锂金属沉积。此外,我们强调了在不同充电状态(SOC)下的不同弛豫过程,其中热力学不稳定的石墨颗粒在中等SOC下经历剧烈的颗粒内锂再分布和颗粒间锂交换,而电极在低SOC和高SOC下平衡要慢得多。这些基于物理的关于不同SOC依赖弛豫效率的见解为开发先进的快速充电协议以抑制锂金属沉积和缩短恒压阶段提供了新的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7266/10449918/c7b1bd65fe0a/41467_2023_40574_Fig1_HTML.jpg

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