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细菌衍生生物碳构建坚固的锂硫电池。

Bacteria-Derived Biological Carbon Building Robust Li-S Batteries.

机构信息

School of Physics and Electronics , Hunan University , Changsha 410082 , People's Republic of China.

Department of Chemistry and Biochemistry , University of California , Los Angeles , California 90095 , United States.

出版信息

Nano Lett. 2019 Jul 10;19(7):4384-4390. doi: 10.1021/acs.nanolett.9b00996. Epub 2019 Jun 5.

DOI:10.1021/acs.nanolett.9b00996
PMID:31150263
Abstract

Lithium sulfur (Li-S) batteries are attracting increasing interest for high-density energy storage. However, the practical application is limited by the rapid capacity fading over repeated charge/discharge cycles which is largely attributed to the formation and shuttling of soluble polysulfide species. To address these issues, we develop a hierarchical structure composite with triple protection strategy via graphene, organic conductor PEDOT, and nitrogen and phosphorus codoped biological carbon to encapsulate sulfur species (GOC@NPBCS). This unique hierarchical structure can effectively immobilize the sulfur species while at the same time improve the electrical conductivity and ensure efficient lithium ion transport to enable excellent Li-S battery performance. In particular, the biological carbon derived from natural bacteria features inherent nitrogen and phosphorus codoping with a strong absorption to lithium polysulfides, which can greatly suppress the dissolution and shuttling of polysulfides that are responsible for rapid capacity fading. With these synergistic effects, the GOC@NPBCS cathode exhibits exceptionally stable cycling stability (an ultralow capacity fading rate of 0.045% per cycle during 1000 cycles at the current rate of 5 C), high specific capacity (1193.8 mAh g at 0.5 C based on sulfur weight), and excellent rate capability.

摘要

锂硫(Li-S)电池因其高能量密度而受到越来越多的关注。然而,其实际应用受到重复充放电循环中容量快速衰减的限制,这主要归因于可溶性多硫化物物种的形成和穿梭。为了解决这些问题,我们通过石墨烯、有机导体 PEDOT 和氮磷共掺杂生物碳开发了一种具有三重保护策略的分级结构复合材料来封装硫物种(GOC@NPBCS)。这种独特的分层结构可以有效地固定硫物种,同时提高电导率并确保有效的锂离子传输,从而实现出色的 Li-S 电池性能。特别是,来源于天然细菌的生物碳具有固有的氮磷共掺杂,对多硫化锂具有很强的吸附能力,可以极大地抑制多硫化物的溶解和穿梭,这是导致容量快速衰减的主要原因。通过这些协同作用,GOC@NPBCS 正极表现出异常稳定的循环稳定性(在 5 C 的电流速率下,1000 次循环中每个循环的超低容量衰减率为 0.045%)、高比容量(基于硫重量的 1193.8 mAh g-1 在 0.5 C 时)和出色的倍率性能。

相似文献

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Bacteria-Derived Biological Carbon Building Robust Li-S Batteries.细菌衍生生物碳构建坚固的锂硫电池。
Nano Lett. 2019 Jul 10;19(7):4384-4390. doi: 10.1021/acs.nanolett.9b00996. Epub 2019 Jun 5.
2
Covalent sulfur embedding in inherent N,P co-doped biological carbon for ultrastable and high rate lithium-sulfur batteries.用于超稳定和高倍率锂硫电池的共价硫嵌入固有氮、磷共掺杂生物炭中
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A natural carbonized leaf as polysulfide diffusion inhibitor for high-performance lithium-sulfur battery cells.一种天然碳化叶作为多硫化物扩散抑制剂用于高性能锂硫电池。
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Sulfur-infiltrated porous carbon microspheres with controllable multi-modal pore size distribution for high energy lithium-sulfur batteries.硫渗透多孔碳微球,具有可控的多模态孔径分布,用于高能锂硫电池。
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Novel hierarchically porous carbon materials obtained from natural biopolymer as host matrixes for lithium-sulfur battery applications.从天然生物聚合物中获得的新型分级多孔碳材料,可用作锂硫电池的宿主基质。
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Sandwich-Type Nitrogen and Sulfur Codoped Graphene-Backboned Porous Carbon Coated Separator for High Performance Lithium-Sulfur Batteries.用于高性能锂硫电池的三明治型氮硫共掺杂石墨烯骨架多孔碳包覆隔膜
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Cobalt disulfide-modified cellular hierarchical porous carbon derived from bovine bone for application in high-performance lithium-sulfur batteries.钴硫化物修饰的源于牛骨的细胞分级多孔碳在高性能锂硫电池中的应用。
J Colloid Interface Sci. 2019 Sep 1;551:219-226. doi: 10.1016/j.jcis.2019.04.079. Epub 2019 Apr 27.

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