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二氧化錳微納米球和微米棒的制備工藝優化及性能

Preparation process optimization and properties of manganese dioxide micro/nano spheres and microrods

  • 摘要: 采用一種簡便、快速和低溫的水熱法制備了超級電容器用MnO2微納米球和微米棒粉體顆粒,并用正交試驗和單因素實驗對其制備工藝進行了優化。通過X射線衍射、掃描電鏡和電化學測試,研究了所得材料的晶體結構、表面形貌和超電容性能.最佳合成工藝條件為:反應溫度150℃,KMnO4/MnCl2摩爾比2.5:1.0,反應時間3h,填充率40%。該工藝下所制的樣品為α-MnO2,且呈現出空心、表面多孔的微納米球和微米棒形貌.微納米球的直徑約為0.2-0.8μm,微米棒的直徑約為30nm、長約為5μm.在此條件下,所得樣品在100、150、200、250和300mA·g-1電流密度下,第5次的放電比電容分別為255、170、133、105和88F·g-1,其等效串聯電阻和電荷轉移電阻分別為0.37和0.40Ω.

     

    Abstract: MnO2 powders with micro/nano spheres simple, quick and low-temperature hydrothermal method and microrods for supercapacitors were synthesized via a Their preparation process was optimized by orthorhombic test and single factor experiment. The crystalline structure, surface morphology and supercapacitive properties of the as-prepared MnO2 powders were studied by X-ray diffraction, scanning electron microscopy and electrochemical measurement. Experimental results show that the optimal reaction conditions are the reaction temperature of 150℃, the KMnO4/MnCl2 molar ratio of 2.5:1.0, the reaction time of 3 h, and the filling factor of 40%. Under the optimal conditions, the as-prepared MnO2 powders have typical α-MnO2 structure with hollow and porous micro/nano spheres and microrods. The α-MnO2 micro/nano sphere diameter is about from 0.2 to 0.8 μm, while the α-MnO2 microrods have the diameter of 30 nm and the length of 5 μm. The discharge specific capacitance of products at the 5th discharge cycle retains 255, 170, 133, 105 and 88 F·g-1 at current densities of 100, 150,200,250 and 300 mA·g-1, respectively. Moreover, the values of equivalent series resistance and charge transfer resistance decrease to 0.37 Ω and 0.40 Ω, respectively.

     

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