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ChemSusChem. 2014 Feb;7(2):543-8. doi: 10.1002/cssc.201300822. Epub 2014 Jan 7.
Nanocrystalline lithium peroxide (Li2 O2 ) is considered to play a critical role in the redox chemistry during the discharge-charge cycling of the Li-O2 batteries. In this report, a spatially resolved, real-time synchrotron X-ray diffraction technique was applied to study the cyclic formation/decomposition of Li2 O2 crystallites in an operating Li-O2 cell. The evaluation of Li2 O2 grain size, concentration, and spatial distribution inside the cathode is demonstrated under the actual cycling conditions. The study not only unambiguously proved the reversibility of the Li2 O2 redox reaction during reduction and evolution of O2 , but also allowed for the concentration and dimension growths of the peroxide nanocrystallites to be accurately measured at different regions within the cathode. The results provide important insights for future investigation on mass and charge transport properties in Li2 O2 and improvement in cathode structure and material design.
纳米晶过氧化锂 (Li2 O2 ) 被认为在 Li-O2 电池的充放电循环过程中的氧化还原化学中起着关键作用。在本报告中,应用了一种空间分辨的、实时的同步加速器 X 射线衍射技术来研究在工作的 Li-O2 电池中 Li2 O2 晶的循环形成/分解。在实际的循环条件下,评估了阴极中 Li2 O2 晶粒尺寸、浓度和空间分布。该研究不仅明确证明了 Li2 O2 氧化还原反应在 O2 的还原和演化过程中的可逆性,而且还能够准确测量阴极不同区域内过氧化物纳米晶的浓度和尺寸增长。研究结果为未来研究 Li2 O2 中的质量和电荷输运性质以及改进阴极结构和材料设计提供了重要的见解。