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首页> 外文期刊>ACS nano >A Carbon-Cotton Cathode with Ultrahigh-Loading Capability for Statically and Dynamically Stable Lithium-Sulfur Batteries
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A Carbon-Cotton Cathode with Ultrahigh-Loading Capability for Statically and Dynamically Stable Lithium-Sulfur Batteries

机译:具有超高负载能力的碳棉阴极,用于静态和动态稳定的锂硫电池

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Sulfur exhibits a high theoretical capacity of 1675 mA h g(-1) via a distinct conversion reaction, which is different from the insertion reactions in commercial lithium-ion batteries. In consideration of its conversion reaction battery chemistry, a custom design for electrode materials could establish the way for attaining high-loading capability while simultaneously maintaining high electrochemical utilization and stability. In this study, this process is undertaken by introducing carbon cotton as an attractive electrode-containment material for enhancing the dynamic and static stabilities of lithium-sulfur (Li-S) batteries. The carbon cotton possessing a hierarchical macro-/microporous architecture exhibits a high surface area of 805 m(2) g(-1) and high microporosity with a micropore area of 557 m(2) g(-1). The macroporous channels allow the carbon cotton to load and stabilize a high amount of active material. The abundant microporous reaction sites spread throughout the carbon cotton facilitate the redox chemistry of the high-loading/content Li-S system. As a result, the high-loading carbon-cotton cathode exhibits (i) enhanced cycle stability with a good dynamic capacity retention of 70% after 100 cycles and (ii) improved cell storage stability with a high static capacity retention of above 93% and a low time-dependent self-discharge rate of 0.12% per day after storing for a long period of 60 days. These carbon-cotton cathodes with the remarkably highest values reported so far of both sulfur loading (61.4 mg cm(-2)) and sulfur content (80 wt %) demonstrate enhanced electrochemical utilization with the highest areal, volumetric, and gravimetric capacities simultaneously.
机译:硫通过独特的转化反应显示出1675 mA h g(-1)的高理论容量,这与商用锂离子电池中的插入反应不同。考虑到其转化反应电池的化学性质,定制的电极材料设计可以确立获得高负载能力的方式,同时保持较高的电化学利用率和稳定性。在这项研究中,此过程是通过引入碳棉作为有吸引力的电极容纳材料来增强锂硫(Li-S)电池的动态和静态稳定性的。具有分层的大孔/微孔结构的碳棉具有805 m(2)g(-1)的高表面积和具有557 m(2)g(-1)的微孔面积的高微孔率。大孔通道使碳棉能够装载并稳定大量的活性物质。遍布整个碳棉的丰富的微孔反应位点促进了高负荷/含量Li-S系统的氧化还原化学反应。结果,高负荷的碳棉阴极表现出(i)增强的循环稳定性,在100次循环后具有70%的良好动态容量保持率;以及(ii)改善的电池储存稳定性,具有93%以上的高静态容量保持率,以及长期存放60天后,每天的自放电率低至0.12%。迄今为止,这些碳棉阴极的硫负荷(61.4 mg cm(-2))和硫含量(80 wt%)均报告了极高的值,显示出更高的电化学利用率,同时具有最高的面积,体积和重量分析能力。

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