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磷酸法木质素基活性炭的制备及其电化学性能研究

Preparation and Electrochemical Performance of Lignin-based Activated Carbon by Phosphoric Acid Activation

  • 摘要: 以杨木木质素为原料,采用磷酸活化法制备中孔发达的活性炭,并利用孔结构分析、XRD、拉曼光谱,研究了活化温度(400~900℃),以及磷酸与木质素质量比(浸渍比,1∶1~4∶1)对活性炭LAC-x-y(x代表浸渍比值,y代表活化湿度)结构的影响,通过电化学表征手段,探讨了炭材料的电化学性能与其结构的关系。孔结构分析结果表明:提升温度和浸渍比有利于活性炭中孔的形成,但过高的温度会导致孔隙结构的坍塌,过高的浸渍比会导致灰分的增加,从而导致活性炭性能降低。XRD和拉曼光谱结果表明:提升温度有助于提高活性炭的石墨化程度,而增加浸渍比会导致石墨化程度的降低。在活化温度为800℃、浸渍比为2∶1的条件下,制得的活性炭LAC-2-800表现出最佳的结构性能,比表面积1 031 m2/g,中孔率61%,平均孔径3.31 nm。使用该活性炭作为超级电容器电极材料时,在1 A/g的电流密度下比电容达到165 F/g,且在10 A/g的电流密度下比电容仍有136 F/g。在1 A/g的电流密度下,在循环5 000次后,比电容值能保持在初始值的78.1%。

     

    Abstract: Mesoporous activated carbon was prepared from poplar lignin by phosphoric acid activation. The effects of activation temperature(400-900 ℃) and mass ratio of phosphoric acid and lignin(impregnation ratio, 1∶1-4∶1) on the structure of activated carbon LAC-x-y(x represented the impregnation ratio, y represented the activation temperature) were investigated by pore structure, XRD and Raman spectroscopy analysis. The relationship between the electrochemical performance of activated carbon and its structure was investigated by means of electrochemical characterization. Pore structure analysis results showed that increasing the temperature and impregnation ratio was beneficial to the formation of mesopore, but too high temperature would lead to the collapse of pore structure, and too high impregnation ratio would lead to the increase of ash content, which would lead to the degradation of the performance of activated carbon. XRD and Raman spectroscopy results showed that increasing the temperature could improve the degree of graphitization of activated carbon, while increasing the impregnation ratio could decrease the degree of graphitization. Under the activation temperature of 800 ℃ and impregnation ratio of 2∶1, the activated carbon LAC-2-800 had the best performance, with specific surface area of 1 031 m2/g, mesopore ratio of 61% and average pore size of 3.31 nm. As the electrode material of supercapacitor, the specific capacitance reached 165 F/g at 1 A/g current density, and 136 F/g at 10 A/g current density. After 5 000 cycles at 1 A/g current density, the specific capacitance value could keep at 78.1% of the initial value.

     

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