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Visualizing redox orbitals and their potentials in advanced lithium-ion battery materials using high-resolution x-ray Compton scattering

机译:使用高分辨率X射线康普顿散射可视化高级锂离子电池材料中的氧化还原轨道及其电势

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摘要

Reduction-oxidation (redox) reactions are the key processes that underlie the batteries powering smartphones, laptops, and electric cars. A redox process involves transfer of electrons between two species. For example, in a lithium-ion battery, current is generated when conduction electrons from the lithium anode are transferred to the redox orbitals of the cathode material. The ability to visualize or image the redox orbitals and how these orbitals evolve under lithiation and delithiation processes is thus of great fundamental and practical interest for understanding the workings of battery materials. We show that inelastic scattering spectroscopy using high-energy x-ray photons (Compton scattering) can yield faithful momentum space images of the redox orbitals by considering lithium iron phosphate (LiFePO4 or LFP) as an exemplar cathode battery material. Our analysis reveals a new link between voltage and the localization of transition metal 3d orbitals and provides insight into the puzzling mechanism of potential shift and how it is connected to the modification of the bond between the transition metal and oxygen atoms. Our study thus opens a novel spectroscopic pathway for improving the performance of battery materials.
机译:氧化还原反应是为智能手机,笔记本电脑和电动汽车供电的电池的关键过程。氧化还原过程涉及两个物种之间的电子转移。例如,在锂离子电池中,当来自锂阳极的传导电子被转移到阴极材料的氧化还原轨道时,产生电流。因此,可视化或成像氧化还原轨道以及在锂化和脱锂过程中这些轨道如何演化的能力对于理解电池材料的工作具有重大的基础和实际意义。我们表明,通过考虑使用磷酸铁锂(LiFePO4或LFP)作为示例阴极电池材料,使用高能X射线光子(康普顿散射)的非弹性散射光谱可以产生氧化还原轨道的真实动量空间图像。我们的分析揭示了电压与过渡金属3d轨道本地化之间的新联系,并提供了对电位漂移的令人困惑的机制及其如何与过渡金属和氧原子之间的键的修饰联系的见解。因此,我们的研究为改善电池材料的性能开辟了一条新的光谱途径。

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