Liao Yaqi, Xiang Jingwei, Yuan Lixia, Hao Zhangxiang, Gu Junfang, Chen Xin, Yuan Kai, Kalambate Pramod K, Huang Yunhui
State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering , Huazhong University of Science and Technology , Wuhan , Hubei 430074 , PR China.
Institute of New Energy for Vehicles, School of Automotive Studies , Tongji University , Shanghai 201804 , PR China.
ACS Appl Mater Interfaces. 2018 Nov 7;10(44):37955-37962. doi: 10.1021/acsami.8b11118. Epub 2018 Oct 23.
It is a tough issue to achieve high electrochemical performance and high sulfur loading simultaneously, which is of important significance for practical Li-S batteries applications. Inspired by the transportation system of the plant root in nature, a biomimetic root-like carbon/titanium nitride (TiN/C) composite nanofiber is designed as a freestanding current collector for the high sulfur loading cathode. Like the plant root which absorbs water and oxygen from soil and transfers them to the trunk and branches, the root-like TiN/C matrix provides high-efficiency polysulfide, electron, and electrolyte transfer for the redox reactions via its three-dimensional-porous interconnected structure. In the meantime, TiN can not only anchor the polysulfides via the polar Ti-S and N-S bond but also further facilitate the redox reaction because of its high catalytic effect. With 4 mg cm sulfur loading, the TiN/C@S cathode delivers a high initial discharge capacity of 983 mA h g at 0.2 C current density; after 300 charge/discharge cycles, the discharge capacity remains 685 mA h g, corresponding to a capacity decay rate of ∼0.1%. Even when the sulfur loading is increased to 10.5 mg cm, the cell still delivers a high capacity of 790 mA h g and a decent cycle life. We believe that this novel biomimetic root-like structure can provide some inspiration for the rational structure design of the high-energy lithium-sulfur batteries and other composite electrode materials.
同时实现高电化学性能和高硫负载是一个棘手的问题,这对于实际的锂硫电池应用具有重要意义。受自然界植物根系运输系统的启发,设计了一种仿生根状碳/氮化钛(TiN/C)复合纳米纤维作为用于高硫负载阴极的独立集流体。就像植物根系从土壤中吸收水分和氧气并将它们输送到树干和树枝一样,根状TiN/C基体通过其三维多孔互连结构为氧化还原反应提供高效的多硫化物、电子和电解质传输。同时,TiN不仅可以通过极性Ti-S和N-S键锚定多硫化物,还因其高催化作用进一步促进氧化还原反应。在硫负载为4 mg cm时,TiN/C@S阴极在0.2 C电流密度下具有983 mA h g的高初始放电容量;经过300次充放电循环后,放电容量仍为685 mA h g,对应容量衰减率约为0.1%。即使硫负载增加到10.5 mg cm,该电池仍具有790 mA h g的高容量和良好的循环寿命。我们相信这种新型的仿生根状结构可以为高能锂硫电池和其他复合电极材料的合理结构设计提供一些启发。