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弱結晶二氧化錳超級電容器充放電分析

Charge-discharge process of a weak-crystalline manganese dioxide supercapacitor

  • 摘要: 以等物質的量的高錳酸鉀和乙酸錳為原料,采用機械化學法制備出弱結晶型α-MnO2超級電容器電極材料.在1.2V電壓內,200mA·g-1電流密度下對對稱型超級電容器進行恒流充放電測試.采用XRD法、循環伏安及交流阻抗法對充放電前后電極材料的結構以及電化學性能進行表征,首次采用求斜率法對充放電曲線分析.結果表明:超級電容器表現出法拉第電容與雙電層電容的雙重特征;在循環過程中,電化學惰性物質Mn3O4生成,循環伏安圖中氧化還原峰逐漸消失;充放電曲線的法拉第電容特征逐漸消失而接近雙電層電容理想曲線;超級電容器的比容量、等效串聯電阻發生了對應的變化,其最大電極比容量達到416F·g-1,經過近500次循環后,比容量為220F·g-1.

     

    Abstract: Equivalent moles of KMnO4 and Mn(CH3COO)2 were used to prepare a weak-crystalline α-MnO2 supercapacitor electrode material via a mechanochemical route. An assembled symmetrical supercapacitor was tested by galvanostatic charging-discharging within 1.2 V at 200 mA·g-1. The structure and electrochemical performances of the electrode material were identified by XRD, cyclic voltammetry and AC impedance both before and after charging-discharging. The slope of the charge-discharge curve was analyzed for the first time. It suggests that the supercapacitor exhibits both double-layer capability and pseudocapacitance property. Mn3O4, an electrochemical inert, has formed in the charging-discharging process. During cycling, redox peaks disappeared gradually in the cyclic voltammetry diagram, and the pseudocapacitance property disappeared in the discharge curve, then the discharge curve was dosed to the ideal line of double-layer capacitance; the specific capacity and equivalent series resistance of the MnO2 supercapacitor changed accordingly, the maximum specific capacity of the MnO2 electrode reached as high as 416 F·g-l, and retained 220 F·g-1 after nearly 500 cycles.

     

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