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高氮掺杂水平的分级碳:用于长寿命锂离子电池和锂硫电池的通用阳极和阴极主体材料。

Hierarchical Carbon with High Nitrogen Doping Level: A Versatile Anode and Cathode Host Material for Long-Life Lithium-Ion and Lithium-Sulfur Batteries.

作者信息

Reitz Christian, Breitung Ben, Schneider Artur, Wang Di, von der Lehr Martin, Leichtweiss Thomas, Janek Jürgen, Hahn Horst, Brezesinski Torsten

机构信息

Institute of Physical Chemistry, Justus Liebig University Giessen , Heinrich-Buff-Ring 17, 35392 Giessen, Germany.

Helmholtz Institute Ulm for Electrochemical Energy Storage , Helmholtzstrasse 11, 89081 Ulm, Germany.

出版信息

ACS Appl Mater Interfaces. 2016 Apr 27;8(16):10274-82. doi: 10.1021/acsami.5b12361. Epub 2016 Feb 23.

DOI:10.1021/acsami.5b12361
PMID:26867115
Abstract

Nitrogen-rich carbon with both a turbostratic microstructure and meso/macroporosity was prepared by hard templating through pyrolysis of a tricyanomethanide-based ionic liquid in the voids of a silica monolith template. This multifunctional carbon not only is a promising anode candidate for long-life lithium-ion batteries but also shows favorable properties as anode and cathode host material owing to a high nitrogen content (>8% after carbonization at 900 °C). To demonstrate the latter, the hierarchical carbon was melt-infiltrated with sulfur as well as coated by atomic layer deposition (ALD) of anatase TiO2, both of which led to high-quality nanocomposites. TiO2 ALD increased the specific capacity of the carbon while maintaining high Coulombic efficiency and cycle life: the composite exhibited stable performance in lithium half-cells, with excellent recovery of low rate capacities after thousands of cycles at 5C. Lithium-sulfur batteries using the sulfur/carbon composite also showed good cyclability, with reversible capacities of ∼700 mA·h·g(-1) at C/5 and without obvious decay over several hundred cycles. The present results demonstrate that nitrogen-rich carbon with an interconnected multimodal pore structure is very versatile and can be used as both active and inactive electrode material in high-performance lithium-based batteries.

摘要

通过在二氧化硅整体模板的孔隙中热解基于三氰甲烷化物的离子液体,采用硬模板法制备了具有涡轮层状微观结构和介孔/大孔的富氮碳。这种多功能碳不仅是长寿命锂离子电池有前景的负极候选材料,而且由于高氮含量(900℃碳化后>8%),作为负极和正极主体材料也表现出良好的性能。为了证明后者,将分级碳用硫进行熔体渗透,并通过锐钛矿型TiO₂的原子层沉积(ALD)进行包覆,这两者都得到了高质量的纳米复合材料。TiO₂的ALD提高了碳的比容量,同时保持了高库仑效率和循环寿命:该复合材料在锂半电池中表现出稳定的性能,在5C下数千次循环后低倍率容量具有优异的恢复性。使用硫/碳复合材料的锂硫电池也表现出良好的循环性能,在C/5下可逆容量约为700 mA·h·g⁻¹,并且在数百次循环中没有明显衰减。目前的结果表明,具有相互连接的多模态孔结构的富氮碳非常通用,可作为高性能锂基电池中的活性和非活性电极材料。

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