Key Laboratory for Liquid-Solid Structural Evolution and Processing of Materials, Ministry of Education, School of Materials Science and Engineering, Shandong University , Jinan 250061, PR China.
ACS Nano. 2017 Jun 27;11(6):6474-6482. doi: 10.1021/acsnano.7b03321. Epub 2017 Jun 13.
Taking advantage of zeolitic imidazolate framework (ZIF-8), ZnS-SbS@C core-double shell polyhedron structure is synthesized through a sulfurization reaction between Zn dissociated from ZIF-8 and S from thioacetamide (TAA), and subsequently a metal cation exchange process between Zn and Sb, in which carbon layer is introduced from polymeric resorcinol-formaldehyde to prevent the collapse of the polyhedron. The polyhedron composite with a ZnS inner-core and SbS/C double-shell as anode for sodium ion batteries (SIBs) shows us a significantly improved electrochemical performance with stable cycle stability, high Coulombic efficiency and specific capacity. Peculiarly, introducing a carbon shell not only acts as an important protective layer to form a rigid construction and accommodate the volume changes, but also improves the electronic conductivity to optimize the stable cycle performance and the excellent rate property. The architecture composed of ZnS inner core and a complex SbS/C shell not only facilitates the facile electrolyte infiltration to reduce the Na-ion diffusion length to improve the electrochemical reaction kinetics, but also prevents the structure pulverization caused by Na-ion insertion/extraction. This approach to prepare metal sulfides based on MOFs can be further extended to design other nanostructured systems for high performance energy storage devices.
利用沸石咪唑酯骨架(ZIF-8),通过 ZIF-8 中 Zn 与硫代乙酰胺(TAA)中 S 的硫化反应以及随后 Zn 和 Sb 的金属阳离子交换过程,合成了 ZnS-Sb@C 核-双壳多面体结构,其中聚合物间苯二酚-甲醛引入碳层以防止多面体坍塌。具有 ZnS 内核和 SbS/C 双壳层的多面体复合材料作为钠离子电池(SIBs)的阳极,表现出显著改善的电化学性能,具有稳定的循环稳定性、高库仑效率和比容量。特别地,引入碳壳不仅作为重要的保护层形成刚性结构并容纳体积变化,而且提高了电子导电性,从而优化了稳定的循环性能和优异的倍率性能。由 ZnS 内核和复杂的 SbS/C 壳组成的结构不仅有利于电解质的渗透,以减少 Na 离子的扩散长度,从而提高电化学反应动力学,而且防止由于 Na 离子的插入/提取而导致结构粉碎。这种基于 MOFs 制备金属硫化物的方法可以进一步扩展到设计其他用于高性能储能设备的纳米结构系统。