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首页> 外文期刊>Journal of Applied Crystallography >Capillary-based micro-battery cell for in situ X-ray powder diffraction studies of working batteries: A study of the initial intercalation and deintercalation of lithium into graphite
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Capillary-based micro-battery cell for in situ X-ray powder diffraction studies of working batteries: A study of the initial intercalation and deintercalation of lithium into graphite

机译:用于工作电池的原位X射线粉末衍射研究的毛细管微电池:对锂初次嵌入和脱嵌到石墨中的研究

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摘要

A novel capillary-based micro-battery cell for in situ X-ray powder diffraction (XRPD) has been developed and used to study the initial intercalation and deintercalation of lithium into graphite in a working battery. The electrochemical cell works in transmission mode and makes it possible to obtain diffraction from a single electrode at a time, which facilitates detailed structural and microstructural studies of the electrode materials. The micro-battery cell is potentially also applicable for in situ X-ray absorption spectroscopy and small-angle X-ray scattering experiments. The in situ XRPD study of the initial intercalation and deintercalation process revealed marked changes in the diffraction pattern of the graphitic electrode material. After the formation of the solid electrolyte interphase layer, the d spacing of the diffraction peak corresponding to the 002 diffraction peak of graphite 2H changes nearly linearly in two regions with slightly different slopes, while the apparent half-width of the diffraction peak displays a few minima and maxima during charging/discharging. DIFFaX+ refinements based on the initial XRPD pattern and the one after the initial discharging-charging cycle show that the structure of the graphite changes from an intergrown structure of graphite 2H and graphite 3R to a nearly ideal graphite 2H structure. DIFFaX+ was also used to refine a model of the stacking disorder in an apparent stage III compound with AAB-and AAC-type slabs.
机译:已开发出一种用于原位X射线粉末衍射(XRPD)的新型毛细管基微电池,并将其用于研究工作电池中锂在石墨中的初始嵌入和脱嵌。电化学电池以透射模式工作,并且可以一次从单个电极获得衍射,这有助于对电极材料进行详细的结构和微观结构研究。微型电池可能还适用于原位X射线吸收光谱法和小角度X射线散射实验。初始插层和脱插过程的原位XRPD研究表明,石墨电极材料的衍射图谱发生了显着变化。在形成固体电解质中间层之后,对应于石墨2H的002衍射峰的衍射峰的d间距在两个斜率略有不同的区域中几乎呈线性变化,而衍射峰的表观半宽度显示出一些充电/放电过程中的最小值和最大值。基于初始XRPD图案和初始放电-充电循环之后的图案的DIFFaX +改进表明,石墨的结构从石墨2H和石墨3R的共生结构变为接近理想的石墨2H结构。 DIFFaX +还被用于用AAB型和AAC型平板改进表观III期化合物的堆垛层错模型。

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