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首页> 外文期刊>Nanoscale >Correlation of the crystal structure and ion storage behavior of MoO3 electrode materials for aluminum-ion energy storage studied using in situ X-ray spectroscopy
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Correlation of the crystal structure and ion storage behavior of MoO3 electrode materials for aluminum-ion energy storage studied using in situ X-ray spectroscopy

机译:相关的晶体结构和离子存储MoO3电极材料的行为使用原位铝离子储能研究x射线光谱

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摘要

To characterize the correlation of the crystal structure and Al-ion storage behavior, we prepared various crystal structures of MoO3 (α-MoO3, β-MoO3 and h-MoO3) electrode materials and studied them via in situ X-ray absorption spectroscopy (XAS) and X-ray diffraction (XRD) techniques. The α-MoO3 electrode material possesses a specific capacitance of 575.4 F g−1 and a gravimetric capacity of 207.8 mA h g−1 at a current density of 1 A g−1. From the in situ XRD results, the crystal structures of α-MoO3 and β-MoO3 show a significant distortion, whereas that of h-MoO3 is minorly affected during the insertion or extraction of Al3+ ions. Based on the in situ XAS results, the MoO6 octahedral structure and Mo ion valence of α-MoO3 and β-MoO3 also exhibit a strong variation, whereas those of h-MoO3 are nearly unchanged during the insertion or extraction of Al3+ ions. Notably, in situ XRD and XAS also clearly show a possible phase of AlxMoO3 during the Al3+ insertion and extraction cycles in the α-MoO3 and β-MoO3 electrode materials, which may play a crucial role in the behavior of the residue of Al3+ ions and poor cycling stability. We provide clear evidence that the Al-ion energy storage performance of various MoO3 electrode materials is strongly associated with the corresponding tunnel space and the stability of their crystal structures. This work also provides new insight into a strong correlation between ion-storage efficiency and the corresponding crystal structure, which is greatly helpful for the development and improvement of new electrode materials for Al-ion energy storage.
机译:描述相关的晶体结构和Al-ion存储行为,我们准备各种MoO3晶体结构(α-MoO3,β-MoO3和h-MoO3)电极材料通过原位x射线吸收和研究他们光谱学(xa)和x射线衍射(XRD)技术。拥有一个特定的电容(575.4 F克−1和重量容量207.8 mA h g−1电流密度的1 g−1。结果,晶体结构的α-MoO3和β-MoO3显示显著的扭曲,而期间h-MoO3是次要影响插入或与离子的萃取。原位xa结果,MoO6八面体的结构和钼离子价α-MoO3和β-MoO3也表现出强烈的变化,而这些的在插入h-MoO3几乎不变或与离子的萃取。和xa也清楚地表明一个可能的阶段AlxMoO3期间与插入和提取周期的α-MoO3和β-MoO3电极材料,发挥着至关重要的作用行为与残留的离子和贫穷循环稳定性。不同的Al-ion储能性能MoO3电极材料是密切相关的空间和与相应的隧道稳定的晶体结构。还提供了新的见解强势相关性贮存和效率相应的晶体结构,这是极大地发展和帮助改善Al-ion的新电极材料能量储存。

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