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Porous, One dimensional and High Aspect Ratio Mn3O4 Nanofibers: Fabrication and Optimization for Enhanced Supercapacitive Properties

机译:多孔,一维和高长径比的Mn3O4纳米纤维:增强超电容性能的制备和优化

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Morphology of Mn3O4 is tuned to the nanoparticles / nanorods / nanofiber if ratio of metal precursor to polymer is varied from 0.33:1 to 2:1 in electrospinning solution. The best optimized nanofiber of Mn3O4 in terms of surface area, pore size and its distribution, and aspect ratio are obtained when equal amount of metal precursor and polymer (MN1:1) in electrospinning solution is taken, and sintered precisely at 1 degrees C min(-1). The structural, morphological and thermal characterizations are carried out by XRD, FESEM, TEM, SAED, BET surface area and TG analysis. Further, these morphologies of Mn3O4 are subjected to the electrochemical characterization for evaluating the supercapacitive performance. The value of specific capacitance of MN1:1 is found to be 210 (+/-5) F g(-1) and 155 (+/-5) F g(-1) at 0.3 A g(-1) in 1 M KCl and 1 M Na2SO4, respectively. Improved supercapacitive performance of MN1:1 in both electrolytes is attributed to the unique nanofibric morphology where small nanoparticles are interconnected with good amount of open pores and forms a porous, one dimensional and high aspect ratio nanofibers. Electrochemical impedance spectroscopy (EIS) shows very low charge transfer resistance in MN1 :1 favorable for fast and facile transportation of electrolyte ions to electrode and vice versa. (C) 2015 Elsevier Ltd. All rights reserved.
机译:如果在电纺丝溶液中金属前驱物与聚合物的比例从0.33:1变为2:1,则Mn3O4的形态将被调整为纳米颗粒/纳米棒/纳米纤维。当在电纺丝溶液中采用等量的金属前驱体和聚合物(MN1:1)并在1℃min精确烧结时,就表面积,孔径及其分布和纵横比而言,可以获得最佳的Mn3O4纳米纤维。 (-1)。通过XRD,FESEM,TEM,SAED,BET表面积和TG分析进行结构,形态和热表征。此外,对Mn3O4的这些形态进行了电化学表征,以评估超电容性能。在1中的0.3 A g(-1)处发现MN1:1的比电容值为210(+/- 5)F g(-1)和155(+/- 5)F g(-1) M KCl和1 M Na2SO4。两种电解质中MN1:1的超电容性能得到改善,这归因于独特的纳米纤维形态,其中小纳米粒子与大量的开孔相互连接,并形成多孔的,一维和高长宽比的纳米纤维。电化学阻抗谱(EIS)在MN1:1中显示出非常低的电荷转移电阻,有利于将电解质离子快速,轻松地传输到电极,反之亦然。 (C)2015 Elsevier Ltd.保留所有权利。

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