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High-performance carbon-coated ZnMn_2O_4 nanocrystallite supercapacitors with tailored microstructures enabled by a novel solution combustion method

机译:新型固溶燃烧法实现具有定制微结构的高性能碳包覆ZnMn_2O_4纳米微晶超级电容器

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摘要

Although ZnMn2O4 is widely studied as Li-ion battery anodes, it remains a challenge to tailor suitable microstructures of the oxide for supercapacitor applications. Carbon-coated ZnMn2O4 (C@ZMO) nanocrystallites showing high-performance pseudocapacitor behaviours in neutral aqueous electrolyte are for the first time successfully synthesised via a novel solution combustion process using polyethylene glycol as a multifunctional microstructure-directing agent. Controlling the molecular weight and amount of the polymer in the combustion solution enables the formation of highly-crystalline C@ZMO having substantially higher, by more than 5 folds, specific surface areas with mesoporous structures and conformal carbon coating via the one-pot synthesis process. The resulting C@ZMO supercapacitor electrodes in Na2SO4(aq) electrolyte exhibit ideal capacitive behaviours with specific capacitances up to 150 F g(-1) and cycle stability showing no capacitance fade after 10,000 cycles at 60% of full capacity and 99% Coulombic efficiency. This study not only illustrates a new powerful synthesis route capable of producing conductive mesoporous crystalline oxide-based nanomaterials for energy storage applications but also reveals a new class of high-performance pseudocapacitive materials for neutral aqueous electrolytes.
机译:尽管ZnMn2O4作为锂离子电池阳极已得到广泛研究,但为超级电容器应用定制合适的氧化物微结构仍然是一项挑战。碳包覆的ZnMn2O4(C @ ZMO)纳米晶体在中性水性电解质中表现出高性能的伪电容器行为,是首次成功地通过新颖的溶液燃烧工艺,使用聚乙二醇作为多功能微结构导向剂,成功合成了纳米晶。控制燃烧溶液中聚合物的分子量和数量可以通过一锅合成法形成高结晶的C @ ZMO,其具有介孔结构和保形碳涂层的比表面积明显高出5倍以上。 。在Na2SO4(aq)电解质中生成的C @ ZMO超级电容器电极表现出理想的电容行为,比电容高达150 F g(-1),循环稳定性显示在10,000次循环后,在60%的满容量和> 99%的库仑容量下,电容没有衰减效率。这项研究不仅说明了一种新的强大合成路线,该路线能够生产用于能量存储应用的导电中孔晶体氧化物基纳米材料,而且还揭示了一种用于中性水性电解质的新型高性能伪电容材料。

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