All MOF-derived-carbon material-based integrated electrode constructed by carbon nanosheet sulfur host and Fe microparticles with carbon nanofiber network interlayer for lithium–sulfur batteries

纳米片 材料科学 碳纳米纤维 碳纤维 锂(药物) 化学工程 硫黄 纳米技术 超级电容器 电化学 电极 碳纳米管 复合数 无机化学 复合材料 化学 冶金 物理化学 内分泌学 工程类 医学
作者
Peng Hao,Tianpeng Zhang,Wenlong Shao,Siyang Liu,Fangyuan Hu
出处
期刊:Applied Surface Science [Elsevier BV]
卷期号:569: 150935-150935 被引量:17
标识
DOI:10.1016/j.apsusc.2021.150935
摘要

All MOF-derived-carbon material-based integrated electrode without metal current collector was constructed with two kinds of MOF-derived-carbon materials coating on PP separator layer by layer, which were both obtained by MIL-101-Fe. • All MOF-derived-carbon material-based flexible integrated electrode was designed . • The fabricated device achieved high-capacity characteristics and good cyclability. • Low polarization voltage in Li 2 S decomposition was achieved by integrated electrode. Lithium–sulfur (Li–S) batteries are promising future-generation portable electronic devices due to the outstanding energy density of S. However, the serve problems of Li–S batteries originating from the intrinsic poor conductivity of S and the dissolution and diffusion of dissoluble polysulfides in electrolytes are a major limitation. Herein, we demonstrated an all metal–organic framework (MOF)-derived carbon material-based integrated sulfur cathode, which was constructed with 3D carbon nanofiber network with Fe microparticles (MIL1000) as interlayer on a polypropylene (PP) separator and 2D nanosheets (MIL900-H) as S host. Notably, the MIL900-H carbon nanosheets with many mesopores and doping oxygen possessed lithium-ion pathways and chemical adsorption of soluble polysulfides, and the MIL1000 interlayer could chemically adsorb, physically block polysulfide, and facilitate the kinetics of the cathode reaction. As a result, the integrated electrode that avoided the use of a metal current collector exhibited a high initial capacity of 1244.6 mAh/g at 0.1 C, fast Li 2 S nucleation, and excellent cycle stability with the capacity retention of 69.3% after 500 cycles at 1 C. Therefore, this rationale strategy of constructing an all MOF-derived-carbon material-based integrated electrode can be extended to other abundant MOF-derived materials for high energy density Li–S batteries.
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