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Tunable supercapacitance of electrospun Mn3O4 beaded chains via charge- discharge cycling and control parameters

机译:通过充放电循环和控制参数可调节的电纺Mn3O4串珠链的超电容

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Here we report on the tunable supercapacitance of the Mn3O4 beaded chains synthesized by a simple and low cost electro-spinning process. Tuning is achieved by controlled phase transformation of surface spinel Mn3O4 beaded chains to layered-birnessite MnO2 nanoflakes through galvanostatic charge discharge cycling. Phase transformation rate is optimized to get maximum capacitance by controlling the parameters such as applied specific current value, number of galvanostatic charge-discharge cycles, micro-structure of working electrode material and the selection of potential range. A maximum specific capacitance of similar to 445 Fg(-1) and areal capacitance of similar to 495 mF cm(-2) are obtained at current densities of 0.5 Ag-1 and 0.125 mA cm(-2) respectively. The superior performance in case of layered-spinel composites among similar nanostructures is due to high surface to volume ratio of the MnO2 nanoflakes formed from the Mn3O4 beaded chains which in turn give rise to large number of surface active sites for the redox reaction to take place. About 100% of capacity retention and coulombic efficiency are observed for 1000 cycles even at a higher current density of 7 Ag-1. Morphological dependence of the phase transformation rate is investigated by preparing two different morphologies of Mn3O4 viz., octahedrons and spherical nanoparticles. (C) 2017 Published by Elsevier B.V.
机译:在这里,我们报告了通过简单且低成本的电纺丝工艺合成的Mn3O4串珠链的可调超级电容。通过将表面尖晶石Mn3O4的珠状链通过恒电流充电放电循环进行受控相变为层状水钠锰矿MnO2纳米薄片来实现调谐。通过控制诸如施加的比电流值,恒电流充放电循环数,工作电极材料的微观结构以及电位范围的选择等参数,可以优化相变速率以获得最大电容。在电流密度分别为0.5 Ag-1和0.125 mA cm(-2)时,可获得类似于445 Fg(-1)的最大比电容和类似于495 mF cm(-2)的面电容。在类似的纳米结构中的层状-尖晶石复合物的情况下,优越的性能是由于由Mn3O4串珠链形成的MnO2纳米薄片的高表面体积比,这反过来又导致了大量的表面活性位点,使氧化还原反应发生。即使在较高的电流密度为7 Ag-1的情况下,在1000个循环中也观察到约100%的容量保持率和库仑效率。通过制备Mn3O4的两种不同形态,八面体和球形纳米粒子,研究了相变速率的形态依赖性。 (C)2017由Elsevier B.V.发布

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