Li Shaohui, Chen Jingwei, Gong Xuefei, Wang Jiangxin, Lee Pooi See
School of Materials Science and Engineering, Nanyang Technological University, Singapore, 639798, Singapore.
Singapore-HUJ Alliance for Research and Enterprise (SHARE), Nanomaterials for Energy and Water Nexus (NEW), Campus for Research Excellence and Technological Enterprise (CREATE), Singapore, 138602, Singapore.
Small. 2018 Dec;14(50):e1804035. doi: 10.1002/smll.201804035. Epub 2018 Oct 30.
Sodium-ion capacitors (SICs) have received intensive attention due to their high energy density, high power density, long cycle life, and low cost of sodium. However, the lack of high-performance anode materials and the tedious presodiation process hinders the practical applications of SICs. A simple and effective strategy is reported to fabricate a high-performance SIC using Fe S as the anode material and an ether-based electrolyte. The Fe S electrode is found to undergo a reversible intercalation reaction after the first cycle, resulting in fast kinetics and excellent reversibility. The Fe S electrode delivers a high capacity of 340 mAh g at 0.05 A g , 179 mAh g at high current of 5 A g and an ultralong cycling performance with 95% capacity retention after 7000 cycles. Coupled with a carbon-based cathode, a high-performance SIC without the presodiation process is successfully fabricated. The hybrid device demonstrates an excellent energy density of 88 Wh kg and superior power density of 11 500 W kg , as well as an ultralong lifetime of 9000 cycles with over 93% capacity retention. An innovative and efficient way to fabricate SICs with both high energy and power density utilizing ether-based electrolytes can be realized to eliminate the presodiation process.
钠离子电容器(SICs)因其高能量密度、高功率密度、长循环寿命和低成本的钠而受到广泛关注。然而,缺乏高性能阳极材料以及繁琐的预钠化过程阻碍了SICs的实际应用。据报道,一种简单有效的策略是使用FeS作为阳极材料和醚基电解质来制造高性能SIC。发现FeS电极在第一个循环后会发生可逆的嵌入反应,从而产生快速的动力学和优异的可逆性。FeS电极在0.05 A g时具有340 mAh g的高容量,在5 A g的高电流下具有179 mAh g的容量,并且在7000次循环后具有95%的容量保持率的超长循环性能。与碳基阴极相结合,成功制造出了无需预钠化过程的高性能SIC。该混合器件展示了88 Wh kg的优异能量密度和11500 W kg的卓越功率密度,以及9000次循环的超长寿命和超过93%的容量保持率。利用醚基电解质制造具有高能量和功率密度的SICs的创新有效方法可以实现,从而消除预钠化过程。