Sulfur-doping biomass based hard carbon as high performance anode material for sodium-ion batteries

IF 4.5 3区 化学 Q1 Chemical Engineering
Nkongolo Tshamala Aristote , Chang Liu , Xinglan Deng , Huanqing Liu , Jingqiang Gao , Wentao Deng , Hongshuai Hou , Xiaobo Ji
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Abstract

The intercalation/deintercalation of Na+ in the hard carbon (HC) has been widely investigated for the construction of high performances sodium-ion batteries (SIBs). In this work, a variety of sulfur-doped HCs were obtained by simple pyrolysis of the sublimated sulfur and the camphor tree (S-Cmph) derived material. When used as anode for SIBs, the S-Cmph-700 (pyrolyzed at 700℃) delivered a capacity of 616.7 mAh/g with an ICE of 66.61 %, high than that of the untreated material pyrolyzed at 1500℃ (50.11 %) (Cmph-1500). Furthermore, excellent rate performance with specific capacities of 372.3, 323, 282.6, 252.6, 221, 181.2 mAh/g at 40, 80, 200, 400, 800 and 2000 mA g−1 can be achieved, respectively. When the current density returned at 40 mA g−1, the anode recovered a specific capacity of 356.8 mAh/g. In addition, the as-acquired anode material exhibited good cycling performance with a reversible capacity of 145.6 mAh/g over 500 cycles at 2000 mA g−1. The improved electrochemical performances of Cmph-HC anode can be attributed to the benefit of the S-doping, leading to the increase of the interlayer spacing of the anode material, which facilitates the intercalation/deintercalation of Na+ ions in the interlayer spacing of the HC material, and provided more active sites in the Cmph-HC anode for the Na+ ions storage. In addition, sulfur can reversibly react with Na+, limiting the irreversible consumption of Na+ and increase the intercalation rate of Na+ inside the anode material. This work presents a low cost, simple and effective way to synthesize a high performances anode material for the commercialization of SIBs.

硫掺杂生物质硬碳作为钠离子电池的高性能负极材料
Na+在硬碳(HC)中的嵌入/脱嵌已被广泛研究用于高性能钠离子电池(SIBs)的构建。在本工作中,通过对升华硫和樟树(S-Cmph)衍生材料的简单热解,获得了多种硫掺杂hc。当用作sib的阳极时,700℃热解的S-Cmph-700的容量为616.7 mAh/g, ICE为66.61%,高于未处理的1500℃热解材料(50.11%)(Cmph-1500)。此外,在40、80、200、400、800和2000 mA g−1时,可分别获得372.3、323、282.6、252.6、221、181.2 mAh/g的优异倍率性能。当电流密度为40 mA g−1时,阳极恢复到356.8 mAh/g的比容量。此外,获得的阳极材料表现出良好的循环性能,在2000 mA g−1下循环500次,可逆容量为145.6 mAh/g。Cmph-HC阳极电化学性能的提高可以归因于s掺杂的好处,导致阳极材料层间距的增加,这有利于Na+离子在HC材料层间距内的插入/脱嵌,并在Cmph-HC阳极中为Na+离子的储存提供了更多的活性位点。此外,硫能与Na+发生可逆反应,限制了Na+的不可逆消耗,提高了Na+在阳极材料内部的插层速率。本工作为sib的商业化提供了一种低成本、简单有效的合成高性能阳极材料的方法。
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来源期刊
Journal of Electroanalytical Chemistry
Journal of Electroanalytical Chemistry Chemical Engineering-General Chemical Engineering
CiteScore
7.50
自引率
6.70%
发文量
912
审稿时长
>12 weeks
期刊介绍: The Journal of Electroanalytical Chemistry is the foremost international journal devoted to the interdisciplinary subject of electrochemistry in all its aspects, theoretical as well as applied. Electrochemistry is a wide ranging area that is in a state of continuous evolution. Rather than compiling a long list of topics covered by the Journal, the editors would like to draw particular attention to the key issues of novelty, topicality and quality. Papers should present new and interesting electrochemical science in a way that is accessible to the reader. The presentation and discussion should be at a level that is consistent with the international status of the Journal. Reports describing the application of well-established techniques to problems that are essentially technical will not be accepted. Similarly, papers that report observations but fail to provide adequate interpretation will be rejected by the Editors. Papers dealing with technical electrochemistry should be submitted to other specialist journals unless the authors can show that their work provides substantially new insights into electrochemical processes.
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