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Utilization of Bio-Renewable Lignin in Building High Capacity, Durable, and Low-Cost Silicon-Based Negative Electrodes for Lithium-Ion Batteries

机译:生物可再生木质素在构建高容量,耐用且低成本的锂离子电池用硅负极中的应用

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摘要

Silicon-based electrodes are the most promising negative electrodes for the next generation high capacity lithium ion batteries (LIB) as silicon provides a theoretical capacity of 3579 mAh g-1, more than 10 times higher than that of the state-of-the-art graphite negative electrodes. However, silicon-based electrodes suffer from poor cycle life due to large volume expansion and contraction during lithiation/delithiation. In order to improve the electrochemical performance a number of strategies have been employed, such as dispersion of silicon in active/inactive matrixes, devising of novel nanostructures, and various coatings for protection. Amongst these strategies, silicon-carbon coating based composites are one of the most promising because carbon coating is comparatively flexible, easy to obtain, and scalable with various industrial processes.;Low cost and renewable lignin, which constitutes up to 30% dry mass of the organic carbon on earth, is widely available from paper and pulp mills which produce lignin in excess of 50 million tons annually worldwide. It is a natural bio-polymer with high carbon content and highly interconnected aromatic network existing as a structural adhesive found in plants. Generally burnt for energy on site, lignin is gradually finding its way into high value-added products such as precursor for carbon fibers, active material in negative electrodes, and raw material for supercapacitors.;This dissertation focuses on high performance silicon-based negative electrodes utilizing lignin as the carbon precursor for conductive additive, binder, and carbon coating. To my knowledge this is one of the first works attempting to utilize and summarize the performance of lignin in silicon-based negative electrodes. The first part of the dissertation shows that siliconlignin composites treated at 800 ºC displayed good capacity and cycling performance. The second part goes to generalize the effect of temperature on silicon-lignin composites and shows that a low temperature treatment granted an electrode with superior performance and cycling properties owing to the preservation of polymeric properties of lignin. The final part of the dissertation discusses the current research trends in SiOx based negative electrodes and extends lignin to that field.;This dissertation will, hopefully, provide knowledge and insight for fellow researchers wishing to utilize lignin or other renewable resources in devising advanced battery electrodes.
机译:硅基电极是下一代高容量锂离子电池(LIB)最有希望的负极,因为硅的理论容量为3579 mAh g-1,比​​目前的状态高出十倍以上。石墨负极。然而,由于在锂化/脱锂期间的大体积膨胀和收缩,基于硅的电极遭受较差的循环寿命。为了改善电化学性能,已经采用了许多策略,例如将硅分散在活性/非活性基质中,设计新颖的纳米结构以及各种用于保护的涂层。在这些策略中,基于硅碳涂层的复合材料是最有前途的复合材料之一,因为碳涂层具有相对的柔韧性,易于获得且可在各种工业过程中扩展。低成本和可再生木质素,构成干物质的30%地球上的有机碳可从造纸厂和纸浆厂广泛获得,这些造纸厂每年在世界范围内生产超过5000万吨的木质素。它是一种天然生物聚合物,具有高碳含量和高度互连的芳族网络,作为植物中发现的结构性粘合剂存在。木质素通常在现场燃烧以消耗能量,因此逐渐进入高附加值产品中,例如碳纤维前驱体,负极活性材料和超级电容器原料。;本论文重点研究高性能的硅基负极利用木质素作为导电添加剂,粘合剂和碳涂层的碳前体。据我所知,这是尝试利用和总结木质素在硅基负极中的性能的第一批工作之一。论文的第一部分表明在800ºC处理的硅木质素复合材料具有良好的容量和循环性能。第二部分归纳了温度对硅-木质素复合材料的影响,并表明低温处理由于保留了木质素的聚合性能而使电极具有优异的性能和循环性能。论文的最后部分讨论了基于SiOx的负极材料的研究现状,并将其推广到该领域。本论文有望为希望利用木质素或其他可再生资源设计高级电池电极的研究人员提供知识和见识。 。

著录项

  • 作者

    Chen, Tao.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Materials science.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 156 p.
  • 总页数 156
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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