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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Na-containing manganese-based cathode materials synthesized by sol-gel method for zinc-based rechargeable aqueous battery
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Na-containing manganese-based cathode materials synthesized by sol-gel method for zinc-based rechargeable aqueous battery

机译:含Na的基于锰的阴极材料,通过溶胶 - 凝胶法合成锌基可充电水电池

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摘要

Zinc-based rechargeable aqueous batteries are regarded as one of the most safe and inexpensive energy storage systems compared to the conventional rechargeable batteries with organic electrolytes. However, the limited cathode materials and the problem of associated metal ion dissolution restrict its practical application. Herein, the inexpensive novel cathode materials of Na-containing manganese-based composite of Na0.44MnO2 /Mn2O3 and Na2/3Fe1/2Mn1/2O2 are designed and synthesized correspondingly by sol-gel methods combined with freeze-drying technique, and are applied in the zinc-based aqueous batteries for the first time. The secondary particles of Na0.44MnO2/Mn2O3 composite with a cubic box and the molecular sieve configurations are composed of nano primary particles with about 150-300 nm, and the obtained O3-Na2/3Fe1 /2Mn1/2O2 at 850 degrees C (O3-NFM-850) appears to homogenous distribution with 3D solid block structure and platelet-shaped particles, while the spherical core-shell structure of P2 -Na2/3Fe1/2Mn1/2O2 at 850 degrees C (P3-NFM-850-PVA) after dispersed by poly (vinyl alcohol) are linked to each other by amorphous carbon. Finally, the cathode of Na0.44MnO2/Mn2O3 and P3-NFM-850-PVA deliver the reversible capacities of 68.3 mAh g(-1) and 42 mAh g(-1) even after 200 cycles at 0.4 A/g respectively without capacity fading. Compared to the reported Na0.44MnO2, the increased capacity ofNa(0.44)MnO(2)/Mn2O3 composite is attributed to the possible co-insertion of sodium ion and zinc ion for Na0.44MnO2 and the zinc ion insertion for Mn203 as well, indicating the synergetic energy storage for rechargeable hybrid aqueous battery and aqueous zinc ion battery. While the improved cyclic performance of Na2/3Fe1/2Mn1/2O2 is ascribed to the structural stability by Fe-doping and carbon-coating. (C) 2020 Elsevier B.V. All rights reserved.
机译:与传统的有机电解质二次电池相比,锌基水性二次电池被认为是最安全、最廉价的储能系统之一。然而,由于阴极材料的限制和伴生金属离子的溶解问题,限制了其实际应用。本文介绍了一种廉价的新型含钠锰基Na0复合阴极材料。采用溶胶-凝胶法结合冷冻干燥技术设计合成了44MnO2/Mn2O3和Na2/3Fe1/2Mn1/2O2,并首次应用于锌基水性电池。Na0的次级粒子。44MnO2/Mn2O3复合材料具有立方盒和分子筛结构,由约150-300nm的纳米一次粒子组成,在850℃下获得的O3-Na2/3Fe1/2Mn1/2O2(O3-NFM-850)呈均匀分布,具有3D固体块状结构和片状颗粒,而P2-Na2/3Fe1/2Mn1/2O2在850℃下经聚乙烯醇分散后的球形核壳结构(P3-NFM-850-PVA)通过无定形碳相互连接。最后是Na0的阴极。44MnO2/Mn2O3和P3-NFM-850-PVA的可逆容量分别为68.3 mAh g(-1)和42 mAh g(-1),即使在0.4 A/g的条件下进行200次循环后也不会出现容量衰减。与报道的Na0相比。44MnO2时,Na(0.44)MnO(2)/Mn2O3复合材料容量的增加归因于钠离子和锌离子对Na0的可能共插入。44MnO2和Mn203的锌离子插入,表明二次混合水电池和水锌离子电池的协同储能。而Na2/3Fe1/2Mn1/2O2循环性能的提高则归因于掺杂Fe和碳涂层的结构稳定性。(C) 2020爱思唯尔B.V.版权所有。

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