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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Elaborate construction and electrochemical properties of lignin-derived macro-/micro-porous carbon-sulfur composites for rechargeable lithium-sulfur batteries: The effect of sulfur-loading time
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Elaborate construction and electrochemical properties of lignin-derived macro-/micro-porous carbon-sulfur composites for rechargeable lithium-sulfur batteries: The effect of sulfur-loading time

机译:用于充电锂 - 硫磺电池的木质素衍生的宏观/微多孔碳 - 硫复合材料的精心构建和电化学性质:硫加载时间的影响

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摘要

In this paper, a framework of macro-/micro-porous carbon derived from commercial lignin is prepared by one-step carbonization/activation method and then utilized as sulfur-loading matrix to assay the effect of sulfur-loading time on the structural and electrochemical properties of carbon-sulfur composite (C-S-t, t defined as sulfur-loading time). As-prepared porous carbon possesses a high specific surface area of 1211.6 m(2) g(-1) and a pore volume of 0.59 cm(3) g(-1), acquires oxygen-containing functional groups on the surface of framework and functionalizes for the chemical adsorption of elemental sulfur. Under N-2 atmosphere (flow rate similar to 60 mL min(-1)) the longer is the sulfur-loading time, the lower value is the total sulfur content of carbon-sulfur composite and the higher percentage of sulfur embedded within the micropores. At a sulfur-loading time of similar to 10 h, the resulting C-S-10 composites have a total sulfur content as low as 50.0 wt% (44.8% in micropores) but exhibit the better electrochemical performances than C-S-6 composites formed at 6 h (sulfur similar to 58.8 wt%, 29.4% in micropores). Therefore, aside from the structural properties of porous carbon, an optimized sulfur-loading time, as well as the chemical binding between carbon host and sulfur, should be considered to develop high-performance cathode materials for liquid electrolyte lithium-sulfur (Li-S) batteries. (C) 2017 Elsevier B.V. All rights reserved.
机译:在本文中,通过一步碳化/活化方法制备了来自商业木质素的宏观/微多孔碳的框架,然后用作硫加载基质来测定硫加载时间对结构和电化学的影响碳 - 硫复合材料的性质(CST,T定义为硫加载时间)。制备的多孔碳具有1211.6m(2 )g(-1)的高比表面积,孔体积为0.59cm(3 )g(-1),在框架表面上获得含氧官能团和用于元素硫的化学吸附的官能化。在N-2气氛下(类似于60mL min(-1)的流速(-1)),硫加载时间越长,较低的值是碳 - 硫复合材料的总硫含量和嵌入微孔内的含量较高百分比的硫含量。在类似于10小时的硫加载时间,得到的Cs-10复合材料的总硫含量低至50.0wt%(微孔44.8%),但表现出比在6小时的Cs-6复合材料的更好的电化学性能(硫类似于58.8wt%,微孔中的29.4%)。因此,除了多孔碳的结构性质之外,应考虑优化的硫 - 加载时间以及碳宿主和硫之间的化学结合,以开发用于液体电解质锂 - 硫的高性能阴极材料(Li-S. )电池。 (c)2017年Elsevier B.V.保留所有权利。

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