论文标题

锂离子电池内部粒子和电解质异质性的三维操作光学成像

Three-dimensional operando optical imaging of single particle and electrolyte heterogeneities inside Li-ion batteries

论文作者

Pandya, Raj, Valzania, Lorenzo, Dorchies, Florian, Xia, Fei, Hugh, Jeffrey Mc, Mathieson, Angus, Tan, Jien Hwee, Parton, Thomas G., De Volder, Michael, Tarascon, Jean-Marie, Gigan, Sylvain, de Aguiar, Hilton B., Grimaud, Alexis

论文摘要

理解(DE)电池材料中的静态异质性是确保最佳电化学性能并开发更好的能量存储设备的关键。但是,由于显微镜电极颗粒的复杂三维形态,固体和液相反应物的参与以及相关的时间表范围(秒至小时),这仍然具有挑战性。在这里,我们克服了这个问题,并证明了台式激光扫描共聚焦显微镜在单个颗粒和电池中同时对锂离子动力学的三维操作测量。我们检查了两种具有技术重要的阴极材料,这些材料已知会受到互插异质性的困扰:lixcoo2和lixni0.8mn0.1co0.1O2。液相前沿的单粒子表面向核转运速度,体积变化以及它们的颗粒间异质性是作为C率的函数捕获的,并根据先前的集合测量为基准。此外,我们在循环过程中可视化粒子和颗粒表面的异质性,并对液体电解质内空间不均匀浓度梯度的形成形成。重要的是,概述了在吸收和繁殖散射材料(例如电池插入化合物)内进行光学成像的条件。

Understanding (de)lithiation heterogeneities in battery materials is key to ensuring optimal electrochemical performance and developing better energy storage devices. However, this remains challenging due to the complex three dimensional morphology of microscopic electrode particles, the involvement of both solid and liquid phase reactants, and range of relevant timescales (seconds to hours). Here, we overcome this problem and demonstrate the use of bench-top laser scanning confocal microscopy for simultaneous three-dimensional operando measurement of lithium ion dynamics in single particles, and the electrolyte, in batteries. We examine two technologically important cathode materials that are known to suffer from intercalation heterogeneities: LixCoO2 and LixNi0.8Mn0.1Co0.1O2. The single-particle surface-to-core transport velocity of Li-phase fronts, and volume changes - as well as their inter-particle heterogeneity - are captured as a function of C-rate, and benchmarked to previous ensemble measurements. Additionally, we visualise heterogeneities in the bulk and at the surface of particles during cycling, and image the formation of spatially non-uniform concentration gradients within the liquid electrolyte. Importantly, the conditions under which optical imaging can be performed inside absorbing and multiply scattering materials such as battery intercalation compounds are outlined.

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