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首页> 外文期刊>ACS applied materials & interfaces >Polyethylene Glycol-Na+ Interface of Vanadium Hexacyanoferrate Cathode for Highly Stable Rechargeable Aqueous Sodium-Ion Battery
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Polyethylene Glycol-Na+ Interface of Vanadium Hexacyanoferrate Cathode for Highly Stable Rechargeable Aqueous Sodium-Ion Battery

机译:聚乙二醇-NA +钒六氰基甲醛阴极的界面,用于高稳定的可充电水溶液电池

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Vanadium hexacyanoferrate (VHCF) with an open-framework crystal structure is a promising cathode material for rechargeable aqueous metal-ion batteries owing to its high electrochemical performance and easy synthesis. In this paper, vanadium hexacyanoferrate cathodes were first used for constructing rechargeable aqueous sodium-ion batteries (VHCF/WO3) and tested in the new-type electrolyte (NaP-4.6) consisting of a polyethylene glycol (PEG)/H2O/NaClO4 electrolyte with a low H+ concentration (molar ratio of [H2O]/[Na+] is 4.6), which has high stability at a high current density as high as 1000 mA g(-1) with a capacity retention of 90.3% after 2000 cycles at high coulombic efficiency (above 97.8%). To understand their outstanding performance, the proton-assisted sodium-ion storage mechanism and interphase chemistry of VHCF are investigated by solid-state NMR (ssNMR) technology. It is suggested that the H+ storage reaction is accompanied by the redox of vanadium atoms and Na+ intercalation is accompanied by the redox of iron atoms. It is also observed that the complex of polyethylene glycol (PEG) with Na+ (PEG-Na+) exists on the VHCF surface, which facilitates the stability of VHCF and promotes the alkali-ion transfer at a high current density. The results of the ssNMR study offer new insights into the intercalation chemistry of Prussian blue analogues with open-framework-structured compounds, which can greatly broaden our horizons for battery research.
机译:具有开放式框架晶体结构的钒六氰基甲酸酯(VHCF)是由于其高电化学性能和易于合成而具有可充电含水金属离子电池的有前途的阴极材料。在本文中,首先用于构建可再充电钠离子电池(VHCF / WO3)并在新型电解质(NAP-4.6)中测试的钒己酰甲醛阴极,其用聚乙二醇(PEG)/ H2O / NaClO4电解质组成低H +浓度([H 2 O] / [Na +]的摩尔比为4.6),其在高达1000mA g(-1)的高电流密度下具有高稳定性,高度为2000次循环后的容量保留90.3%库仑效率(97.8%以上)。要了解其出色的性能,通过固态NMR(SSNMR)技术研究了质子辅助钠离子储存机理和VHCF的相互作用。建议H +储存反应伴随着钒原子的氧化还原,Na +插层伴有铁原子的氧化还原。还观察到,在VHCF表面上存在与Na +(PEG-Na +)的聚乙二醇(PEG)的复合物,其促进VHCF的稳定性,并以高电流密度促进碱离子转移。 SSNMR研究的结果为普鲁士蓝色类似物的嵌入化学提供了新的见解,具有开放式框架结构化合物,可以大大拓宽电池研究的视野。

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