Key Laboratory of Synthetic and Natural Functional Molecule Chemistry (Ministry of Education), College of Chemistry & Materials science, Northwest University, Xi'an, 710127, P. R. China.
State Key Lab Incubation Base of Photoelectric Technology and Functional Materials, International Collaborative Center on Photoelectric Technology and Nano Functional Materials, Institute of Photonics & Photon-Technology, Northwest University, Xi'an, 710127, P. R. China.
Small. 2023 Mar;19(10):e2206340. doi: 10.1002/smll.202206340. Epub 2022 Dec 23.
Sodium-based dual-ion batteries (SDIBs) have become a new type of energy storage device with great application value because of their high operating voltage, high energy density, and low cost. However, transition-metal dichalcogenide (TMD) anodes show unsatisfactory Na electrochemical performance owing to the low intrinsic conductivity and inferior ion transport kinetics. Here, an elaborate design is developed to prepare a composite of WSSe nanosheets supported on a 3D cross-networked porous carbon skeleton (WSSe@CPCS), which possesses en-rich anion vacancies and WSSe with expanded inter-layer spacing, as well as an interconnected porous structure. As a result, the WSSe@CPCS anode for sodium-ion batteries (SIBs) exhibits preeminent reversible capacities, excellent cycle stability, and superior rate capability. The systematic electrochemical kinetic analysis and density functional theory results further show that the effect of anion vacancies and CPCS synergistically enhances the conductivity and reduces charge transfer resistance, thus making a great contribution to fast reaction kinetics. Finally, the implementations of the WSSe@CPCS anode in progressive SIB and DIB full-cell configurations exhibit satisfactory performance, which reveals their widely practical application. This research will provide an exciting approach to designing advanced defect-structured tungsten-based TMD materials for SIBs, DIBs, and even a broad range of energy storage.
钠离子基双离子电池(SDIBs)由于其高工作电压、高能量密度和低成本而成为一种具有巨大应用价值的新型储能装置。然而,过渡金属二硫属化物(TMD)由于本征电导率低和离子输运动力学性能差,其钠离子电化学性能并不令人满意。在这里,我们精心设计了一种 WSSe 纳米片负载在 3D 交联多孔碳骨架(WSSe@CPCS)上的复合材料,其具有丰富的阴离子空位和层间距扩大的 WSSe,以及相互连通的多孔结构。结果,WSSe@CPCS 钠离子电池(SIBs)阳极表现出卓越的可逆容量、优异的循环稳定性和卓越的倍率性能。系统的电化学动力学分析和密度泛函理论结果进一步表明,阴离子空位和 CPCS 的协同作用增强了导电性并降低了电荷转移电阻,从而对快速反应动力学做出了巨大贡献。最后,WSSe@CPCS 阳极在渐进式 SIB 和 DIB 全电池配置中的实施表现出令人满意的性能,这揭示了其广泛的实际应用。这项研究将为设计用于 SIB、DIB 甚至更广泛的储能应用的先进缺陷结构钨基 TMD 材料提供一个令人兴奋的途径。