Chaoqiao Yang, Shuang Ding, Ya Zhao, Jinxia Zhou, Lin Li and Jiaxin Fan
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引用次数: 0
Abstract
Aqueous zinc–sodium hybrid batteries with a Prussian blue cathode have been extensively studied in recent years. However, less research has been conducted on low-cost ferric ferricyanide (FeFe(CN)6) cathode materials. Considering that both Zn2+ and Na+ can be reversibly embedded in FeFe(CN)6 crystals, here we focus on mixed electrolytes with different concentrations of ZnSO4 and Na2SO4 in deionized water to explore the preference of FeFe(CN)6 towards Zn2+ and Na+. As a result, by using 0.1 M ZnSO4 + 1 M Na2SO4 electrolyte, a superior battery performance is obtained, which reveals that the co-function of Zn2+ and Na+ in this electrolyte promotes Zn//FeFe(CN)6 cells to exert a superior specific capacity. In this work, FeFe(CN)6 is synthesized by a co-precipitation method and is analyzed by XRD, SEM, etc., and then used as the cathode material in Zn–Na hybrid batteries. Cyclic voltammetry (CV) and galvanostatic charge–discharge (GCD) tests show that FeFe(CN)6 in 0.1 M ZnSO4 + 1 M Na2SO4 electrolyte delivers the highest discharge/charge capacities of 165.2/165.9 mA h g−1 (theoretical specific capacity: 212.2 mA h g−1) at a 0.1 C current density, with good capacity retention of 84% after 200 cycles at 15 C, outperforming many of the reported Zn–Na hybrid cells.
近年来,具有普鲁士蓝阴极的水性锌钠混合电池得到了广泛的研究。然而,对低成本铁氰化铁(FeFe(CN)6)阴极材料的研究较少。考虑到Zn2+和Na+都可以可逆地嵌入FeFe(CN)6晶体中,本文重点研究了去离子水中不同浓度ZnSO4和Na2SO4的混合电解质,以探索FeFe(CN)6对Zn2+和Na+的偏好。结果,通过使用0.1M ZnSO4+1M Na2SO4电解质,获得了优异的电池性能,这表明该电解质中Zn2+和Na+的共作用促进了Zn//FeFe(CN)6电池发挥优异的比容量。本工作采用共沉淀法合成了FeFe(CN)6,并通过XRD、SEM等进行了分析,然后将其用作Zn-Na混合电池的正极材料。循环伏安法(CV)和恒电流充放电(GCD)测试表明,在0.1M ZnSO4+1M Na2SO4电解质中的FeFe(CN)6在0.1C电流密度下提供了165.2/165.9mA h g-1的最高放电/充电容量(理论比容量:212.2mA h g-1),在15C下200次循环后具有84%的良好容量保持率,优于许多报道的Zn-Na混合电池。
期刊介绍:
Dalton Transactions is a journal for all areas of inorganic chemistry, which encompasses the organometallic, bioinorganic and materials chemistry of the elements, with applications including synthesis, catalysis, energy conversion/storage, electrical devices and medicine. Dalton Transactions welcomes high-quality, original submissions in all of these areas and more, where the advancement of knowledge in inorganic chemistry is significant.