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首页> 外文期刊>Journal of Applied Crystallography >Li-ion half-cells studied operando during cycling by small-angle neutron scattering
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Li-ion half-cells studied operando during cycling by small-angle neutron scattering

机译:锂离子半电池在小角中子散射循环期间研究了Operando

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Small-angle neutron scattering (SANS) was recently applied to the in situ and operando study of the charge/discharge process in Li-ion battery full-cells based on a pouch cell design. Here, this work is continued in a half-cell with a graphite electrode cycled versus a metallic lithium counter electrode, in a study conducted on the SANS-1 instrument of the neutron source FRM II at the Heinz Maier-Leibnitz Zentrum in Garching, Germany. It is confirmed that the SANS integrated intensity signal varies as a function of graphite lithiation, and this variation can be explained by changes in the squared difference in scattering length density between graphite and the electrolyte. The scattering contrast change upon graphite lithiation/delithiation calculated from a multi-phase neutron scattering model is in good agreement with the experimentally measured values. Due to the finite coherence length, the observed SANS contrast, which mostly stems from scattering between the (lithiated) graphite and the electrolyte phase, contains local information on the mesoscopic scale, which allows the development of lithiated phases in the graphite to be followed. The shape of the SANS signal curve can be explained by a core-shell model with step-wise (de)lithiation from the surface. Here, for the first time, X-ray diffraction, SANS and theory are combined to give a full picture of graphite lithiation in a half-cell. The goal of this contribution is to confirm the correlation between the integrated SANS data obtained during operando measurements of an Li-ion half-cell and the electrochemical processes of lithiation/delithiation in micro-scaled graphite particles. For a deeper understanding of this correlation, modelling and experimental data for SANS and results from X-ray diffraction were taken into account.
机译:最近基于袋细胞设计应用小角中子散射(SAN)对锂离子电池全细胞充电/放电过程的原位和Operando研究。在这里,在德国Heinz Maier-Leibnitz Zentrum在Garching的中子源FRM II上的SAN-1仪器上进行的研究中,将该工作继续在具有金属锂电极的半电池中循环。 。确认SANS集成强度信号随石墨锂锂的函数而变化,并且可以通过石墨和电解质之间的散射长度密度的平方差的变化来解释该变化。从多相中子散射模型计算的石墨锂化/脱轨时的散射对比度变化与实验测量值良好。由于有限长度,观察到的SANs对比度,其主要源于(LITHED)石墨和电解质相之间的散射,含有关于介观标尺的局部信息,这允许遵循石墨中的锂化相的发展。 SANS信号曲线的形状可以由核心壳模型与来自表面的逐步(de)锂化的核心壳模型来解释。这里,首次,组合X射线衍射,SAN和理论,以在半个细胞中提供石墨锂的完整图像。该贡献的目的是确认在锂离子半电池的Outmando测量期间获得的集成SAND数据与微鳞片石墨颗粒中的锂离子/脱锂的电化学过程中获得的集成SANS数据之间的相关性。为了更深入地理解这种相关性,考虑了SAN的模拟和实验数据和X射线衍射的结果。

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