Xu Anding, Xia Qi, Zhang Shenkui, Duan Huanhuan, Yan Yurong, Wu Songping
School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou, 510641, China.
School of Materials Science and Engineering, South China University of Technology, Guangzhou, 510641, China.
Small. 2019 Nov;15(45):e1903521. doi: 10.1002/smll.201903521. Epub 2019 Sep 18.
Antimony is a competitive and promising anode material for sodium-ion batteries (SIBs) due to its high theoretical capacity. However, the poor rate capability and fast capacity fading greatly restrict its practical application. To address the above issues, a facile and eco-friendly sacrificial template method is developed to synthesize hollow Sb nanoparticles impregnated in open carbon boxes (Sb HPs@OCB). The as-obtained Sb HPs@OCB composite exhibits excellent sodium storage properties even when operated at an elevated temperature of 50 °C, delivering a robust rate capability of 345 mAh g at 16 A g and rendering an outstanding reversible capacity of 187 mAh g at a high rate of 10 A g after 300 cycles. Such superior electrochemical performance of the Sb HPs@OCB can be attributed to the comprehensive characteristics of improved kinetics derived from hollow Sb nanoparticles impregnated into 2D carbon nanowalls, the existence of robust SbOC bond, and enhanced pseudocapacitive behavior. All those factors enable Sb HPs@OCB great potential and distinct merit for large-scale energy storage of SIBs.
锑因其高理论容量,是一种有竞争力且很有前景的钠离子电池(SIBs)负极材料。然而,其较差的倍率性能和快速的容量衰减极大地限制了它的实际应用。为了解决上述问题,人们开发了一种简便且环保的牺牲模板法,以合成负载在开放碳盒中的中空锑纳米颗粒(Sb HPs@OCB)。所制备的Sb HPs@OCB复合材料即使在50°C的高温下运行,也表现出优异的储钠性能,在16 A g的电流密度下具有345 mAh g的稳健倍率性能,并且在10 A g的高电流密度下经过300次循环后,具有187 mAh g的出色可逆容量。Sb HPs@OCB如此优异的电化学性能可归因于多种综合特性,包括负载在二维碳纳米壁中的中空锑纳米颗粒所带来的动力学改善、稳定的SbOC键的存在以及增强的赝电容行为。所有这些因素使Sb HPs@OCB在钠离子电池大规模储能方面具有巨大潜力和显著优势。