Wang Ting, Li Wenqi, Fu Yujun, Wang Dongjiao, Wu Liang, Sun Kai, Liu Dequan, Ma Runze, Shi Yujie, Yang Gang, Wu Ying, He Deyan
School of Materials and Energy, LONGi Institute of Future Technology, Lanzhou University, Lanzhou, 730000, China.
School of Mathematics and Physics, Lanzhou Jiaotong University, Lanzhou, 730000, China.
Small. 2024 Jun;20(24):e2311180. doi: 10.1002/smll.202311180. Epub 2024 Jan 4.
The practical application of the room-temperature sodium-sulfur (RT Na-S) batteries is currently limited by low reversible capacity and serious capacity decay due to the sluggish reaction kinetics and shuttle effect. It is necessary to design a suitable sulfur host integrated with electrocatalysts to realize effective chemisorption and catalysis of sodium polysulfides (NaPSs). Herein, under the guidance of theoretical calculation, the Mott-Schottky heterojunction with a built-in electric field composed of iron (Fe) and iron disulfide (FeS) components anchored on a porous carbon matrix (Fe/FeS-PC) is designed and prepared. The enhanced chemisorption effect of Fe, the fast electrocatalytic effect of FeS, and the fast transfer effect of the built-in electric field within the Fe/FeS heterojunction in the cathode of RT Na-S batteries work together to effectively improve the electrochemical performance. As a result, the Fe/FeS-PC@S cathode exhibits high reversible capacity (815 mAh g after 150 cycles at 0.2 A g) and excellent stability (516 mAh g after 600 cycles at 5 A g, with only 0.07% decay per cycle). The design of the Fe/FeS heterojunction electrocatalyst provides a new strategy for the development of highly stable RT Na-S batteries.
室温钠硫(RT Na-S)电池的实际应用目前受到限制,因为反应动力学迟缓以及穿梭效应导致可逆容量低且容量严重衰减。有必要设计一种与电催化剂集成的合适硫主体,以实现对多硫化钠(NaPSs)的有效化学吸附和催化。在此,在理论计算的指导下,设计并制备了一种由锚定在多孔碳基体(Fe/FeS-PC)上的铁(Fe)和二硫化铁(FeS)组分组成的具有内建电场的莫特-肖特基异质结。RT Na-S电池阴极中Fe/FeS异质结内Fe的增强化学吸附作用、FeS的快速电催化作用以及内建电场的快速转移作用共同有效地改善了电化学性能。结果,Fe/FeS-PC@S阴极表现出高可逆容量(在0.2 A g下循环150次后为815 mAh g)和优异的稳定性(在5 A g下循环600次后为516 mAh g,每循环仅衰减0.07%)。Fe/FeS异质结电催化剂的设计为开发高度稳定的RT Na-S电池提供了一种新策略。