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Anomalous Discharge Behavior of Graphite Nanosheet Electrodes in Lithium-Oxygen Batteries

机译:锂-氧电池中石墨纳米片电极的异常放电行为

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摘要

Lithium-oxygen (Li-O ) batteries require rational air electrode concepts to achieve high energy densities. We report a simple but effective electrode design based on graphite nanosheets (GNS) as active material to facilitate the discharge reaction. In contrast to other carbon forms we tested, GNS show a distinctive two-step discharge behavior. Fundamental aspects of the battery’s discharge profile were examined in different depths of discharge using scanning electron microscopy and electrochemical impedance spectroscopy. We attribute the second stage of discharge to the electrochemically induced expansion of graphite, which allows an increase in the discharge product uptake. Raman spectroscopy and powder X-ray diffraction confirmed the main discharge product to be Li O , which was found as particulate coating on GNS at the electrode top, and in damaged areas at the bottom together with Li CO and Li O. Large discharge capacity comes at a price: the chemical and structural integrity of the cathode suffers from graphite expansion and unwanted byproducts. In addition to the known instability of the electrode–electrolyte interface, new challenges emerge from high depths of discharge. The mechanistic origin of the observed effects, as well as air electrode design strategies to deal with them, are discussed in this study.
机译:锂氧(Li-O)电池需要合理的空气电极概念来实现高能量密度。我们报告了一种基于石墨纳米片(GNS)作为活性物质的简单但有效的电极设计,以促进放电反应。与我们测试的其他碳形式相比,GNS显示出独特的两步放电行为。使用扫描电子显微镜和电化学阻抗谱在不同的放电深度检查了电池放电曲线的基本方面。我们将放电的第二阶段归因于石墨的电化学诱导膨胀,这允许增加放电产物的吸收。拉曼光谱和粉末X射线衍射证实主要放电产物为Li O,发现它是电极顶部GNS上的颗粒涂层,以及Li CO和Li O在底部损坏的区域。放电容量大价格:阴极的化学和结构完整性会受到石墨膨胀和有害副产物的影响。除了已知的电极-电解质界面不稳定性外,高放电深度也带来了新的挑战。在这项研究中讨论了观察到的效应的机理起源,以及应对这些效应的空气电极设计策略。

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