School of Materials and Energy, Guangdong University of Technology, Guangzhou, 510006, P. R. China.
College of Chemistry and Molecular Sciences, Hubei International Scientific and Technological Cooperation Base of Sustainable Resource and Energy, Wuhan University, Wuhan 430072, China.
Nanoscale. 2023 Mar 23;15(12):5655-5664. doi: 10.1039/d2nr06672f.
Transition metal selenides are a research hotspot in sodium-ion batteries (SIBs). However, slow kinetics and rapid capacity decay due to volume changes during cycling limit their commercial applications. Heterostructures have the ability to accelerate charge transport and are widely used in energy storage devices due to their abundant active sites and lattice interfaces. A rational design of heterojunction electrode materials with excellent electrochemical performance is essential for SIBs. Herein, a novel anode material heterostructured FeSe/MoSe (FMSe) nanoflower for SIBs was successfully prepared through a facile co-precipitation and hydrothermal route. The as-prepared FMSe heterojunction exhibits excellent electrochemical performance, including a high invertible capacity (493.7 mA h g after 150 cycles at 0.2 A g), long-term cycling stability (352.2 mA h g even after 4200 cycles at 5.0 A g) and competitive rate capability (361.2 mA h g at 20 A g). By matching with a NaV(PO) cathode, it can even exhibit ideal cycling stability (123.5 mA h g at 0.5 A g after 200 cycles). Furthermore, the sodium storage mechanism of the FMSe electrodes was systematically determined by electrochemical techniques. Theoretical calculation also reveals that the heterostructure on the FMSe interface enhances charge transport and promotes reaction kinetics.
过渡金属硒化物是钠离子电池(SIBs)的研究热点。然而,由于循环过程中的体积变化,其动力学缓慢和容量快速衰减限制了它们的商业应用。由于具有丰富的活性位点和晶格界面,异质结构能够加速电荷传输,因此在储能设备中得到了广泛应用。合理设计具有优异电化学性能的异质结电极材料对于 SIBs 至关重要。本文通过简便的共沉淀和水热法成功制备了一种用于 SIBs 的新型阳极材料异质结构 FeSe/MoSe(FMSe)纳米花。所制备的 FMSe 异质结表现出优异的电化学性能,包括高可逆容量(在 0.2 A g 下循环 150 次后为 493.7 mA h g)、长期循环稳定性(在 5.0 A g 下循环 4200 次后仍为 352.2 mA h g)和竞争力的倍率性能(在 20 A g 时为 361.2 mA h g)。通过与 NaV(PO) 阴极匹配,甚至可以表现出理想的循环稳定性(在 0.5 A g 下循环 200 次后为 123.5 mA h g)。此外,通过电化学技术系统地确定了 FMSe 电极的储钠机制。理论计算还表明,FMSe 界面上的异质结构增强了电荷传输并促进了反应动力学。