Fan Honghong, Yang Zhifang, Cheng Zhiwen, Bahmani Farzaneh, Zhang Jingping, Wu Xing-Long
College of Chemical Engineering, Hubei University of Arts and Science, Xiangyang 441053, PR China; Hubei Longzhong Laboratory, Xiangyang 441000, Hubei, PR China.
Faculty of Chemistry, Northeast Normal University, Changchun 130024, PR China.
J Colloid Interface Sci. 2024 Aug;667:303-311. doi: 10.1016/j.jcis.2024.04.086. Epub 2024 Apr 14.
Metal selenides have emerged as promising Na-storage anode materials owing to their substantial theoretical capacity and high cost-effectiveness. However, the application of metal selenides is hindered by inferior electronic conductivity, huge volume variation, and sluggish kinetics of ionic migration. In response to these challenges, herein, a hierarchical hollow tube consisting of FeSe nanosheets and Se quantum dots anchored within a carbon skeleton (HT-FeSe/Se/C) is strategically engineered and synthesized. The most remarkable feature of HT-FeSe/Se/C is the introduction of Se quantum dots, which could lead to high electron density near the Fermi level and significantly enhance the overall charge transfer capability of the electrode. Moreover, the distinctive hollow tubular structure enveloped by the carbon skeleton endows the HT-FeSe/Se/C anode with robust structural stability and fast surface-controlled Na-storage kinetics. Consequently, the as-synthesized HT-FeSe/Se/C demonstrates a reversible capacity of 253.5 mAh/g at a current density of 5 A/g and a high specific capacity of 343.9 mAh/g at 1 A/g after 100 cycles in sodium-ion batteries (SIBs). Furthermore, a full cell is assembled with HT-FeSe/Se/C as the anode, and a vanadium-based cathode (NaV(PO)OF), showcasing a high specific capacity of 118.1 mAh/g at 2 A/g. The excellent performance of HT-FeSe/Se/C may hint at future material design strategies and advance the development and application of SIBs.
金属硒化物因其可观的理论容量和高性价比,已成为颇具潜力的钠存储负极材料。然而,金属硒化物的应用受到电子导电性差、体积变化大以及离子迁移动力学缓慢的阻碍。针对这些挑战,本文精心设计并合成了一种由铁硒纳米片和锚定在碳骨架内的硒量子点组成的分级中空管(HT-FeSe/Se/C)。HT-FeSe/Se/C最显著的特点是引入了硒量子点,这可导致费米能级附近的高电子密度,并显著提高电极的整体电荷转移能力。此外,由碳骨架包裹的独特中空管状结构赋予HT-FeSe/Se/C负极强大的结构稳定性和快速的表面控制钠存储动力学。因此,所合成的HT-FeSe/Se/C在钠离子电池(SIBs)中,在5 A/g的电流密度下表现出253.5 mAh/g的可逆容量,在1 A/g的电流密度下经过100次循环后具有343.9 mAh/g的高比容量。此外,以HT-FeSe/Se/C作为负极组装了一个全电池,并搭配了基于钒的正极(NaV(PO)OF),在2 A/g的电流密度下展示出118.1 mAh/g的高比容量。HT-FeSe/Se/C的优异性能可能为未来的材料设计策略提供思路,并推动SIBs的开发与应用。