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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Ag incorporated Mn3O4/AC nanocomposite based supercapacitor devices with high energy density and power density
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Ag incorporated Mn3O4/AC nanocomposite based supercapacitor devices with high energy density and power density

机译:掺银的Mn3O4 / AC纳米复合材料超级电容器器件,具有高能量密度和功率密度

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摘要

Silver incorporated Mn3O4/amorphous carbon (AC) nanocomposites are synthesized by a green chemistry method. X-ray diffraction studies revealed the structural changes in Mn3O4/AC nanocomposites attributable to the addition of silver. Cyclic voltammetry, charge-discharge and ac-impedance studies indicated that the Ag-Mn3O4/AC-5 electrode was the most suitable candidate for supercapacitor applications. From the galvanostatic charge-discharge studies, a higher specific capacitance of 981 F g(-1) at a specific current of 1 A g(-1) was obtained. An Ag-Mn3O4/AC-symmetric supercapacitor consisting of an Ag-incorporated Mn3O4/AC composite as an anode as well as a cathode, and an asymmetric supercapacitor consisting of an Ag-incorporated Mn3O4/AC composite as a cathode and an activated carbon as an anode have been fabricated. The symmetric device exhibits a specific cell capacitance of 72 F g(-1) at a specific current of 1 A g(-1) whereas the asymmetric device delivers a specific cell capacitance of 180 F g(-1) at a high current rate of 10 A g(-1). The asymmetric supercapacitor device yields a high energy density of 81 W h kg(-1). This is higher than that of lead acid batteries and comparable with that of nickel hydride batteries.
机译:通过绿色化学方法合成了掺银的Mn3O4 /无定形碳(AC)纳米复合材料。 X射线衍射研究表明Mn3O4 / AC纳米复合材料的结构变化归因于银的添加。循环伏安法,充放电和交流阻抗研究表明,Ag-Mn3O4 / AC-5电极是超级电容器应用的最合适的候选材料。从恒电流充放电研究中,在1 A g(-1)的比电流下可获得更高的981 F g(-1)的比电容。由掺有Ag的Mn3O4 / AC复合材料作为阳极和阴极组成的Ag-Mn3O4 / AC对称超级电容器,以及由掺有Ag的Mn3O4 / AC复合材料作为阴极和活性炭组成的非对称超级电容器已经制造出阳极。对称器件在1 A g(-1)的特定电流下显示出72 F g(-1)的特定单元电容,而非对称器件在高电流速率下显示180 F g(-1)的特定单元电容。 10 A g(-1)。非对称超级电容器器件可产生81 W h kg(-1)的高能量密度。这高于铅酸电池,可与氢化镍电池相比。

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