郑修成, 李盼, 张晓丽. 氮掺杂多孔薄层石墨烯的制备、表征及电容性能研究[J]. 信阳师范学院学报(自然科学版), 2020, 33(2): 270-275. DOI: 10.3969/j.issn.1003-0972.2020.02.015
引用本文: 郑修成, 李盼, 张晓丽. 氮掺杂多孔薄层石墨烯的制备、表征及电容性能研究[J]. 信阳师范学院学报(自然科学版), 2020, 33(2): 270-275. DOI: 10.3969/j.issn.1003-0972.2020.02.015
ZHENG Xiucheng, LI Pan, ZHANG Xiaoli. Preparation, Characterization and Capacitive Properties of Porous Graphene Thin Sheets Doped with Nitrogen[J]. Journal of Xinyang Normal University (Natural Science Edition), 2020, 33(2): 270-275. DOI: 10.3969/j.issn.1003-0972.2020.02.015
Citation: ZHENG Xiucheng, LI Pan, ZHANG Xiaoli. Preparation, Characterization and Capacitive Properties of Porous Graphene Thin Sheets Doped with Nitrogen[J]. Journal of Xinyang Normal University (Natural Science Edition), 2020, 33(2): 270-275. DOI: 10.3969/j.issn.1003-0972.2020.02.015

氮掺杂多孔薄层石墨烯的制备、表征及电容性能研究

Preparation, Characterization and Capacitive Properties of Porous Graphene Thin Sheets Doped with Nitrogen

  • 摘要: 以氧化石墨烯(GO)为原料、硫酸铵((NH42SO4)为动态气体模板剂,采用浸渍结合焙烧工艺制备了氮掺杂多孔薄层石墨烯(p-Gr).利用扫描电镜(SEM)、透射电镜(TEM)、X-射线衍射(XRD)、X-射线光电子能谱(XPS)、拉曼光谱(Raman)、氮气吸附-脱附(N2 adsorption-desorption)等手段对所得材料进行了表征,并考察了不同硫酸铵用量对所制材料电容性能的影响.结果表明,与未活化的石墨烯(Gr)相比(SBET=70.5 m2/g),所制p-Gr-40具有更大的比表面积(SBET=267.3 m2/g)、更为丰富的孔结构以及优异的电化学性能.在三电极超级电容器中,在电流密度为1 A/g时,p-Gr-40比电容可达139.2 F/g,远远高于Gr(56.5 F/g);在对称两电极超级电容器中,在功率密度为160.03 W/kg时,p-Gr-40的能量密度为12.98 Wh/kg,其比电容在充放电循环10 000圈后仍保持基本不变.这些优异的电化学性能源于其多孔结构及杂原子(如氮)掺杂.

     

    Abstract: Porous graphene thin sheets (p-Gr) doped with nitrogen are prepared from graphene oxide (GO) by using ammonium sulfate ((NH4)2SO4) as dynamic gas template. The obtained samples are characterized by SEM, TEM, XRD, XPS, Raman, and N2 adsorption-desorption. Furthermore, the influence of different (NH4)2SO4 dosages on the electrochemical performance of the corresponding samples is investigated. Compared with the un-activated graphene (Gr) (SBET=70.5 m2/g), the resultant p-Gr-40 possesses higher specific surface area (SBET=267.3 m2/g), more abundant porous structure, and much better capacitive performance. The specific capacitance of p-Gr-40 (Cm=139.2 F/g) is much larger than that of Gr (Cm=56.5 F/g) at a current density of 1 A/g in the three-electrode supercapacitor system. Meanwhile, p-Gr-40 owns an energy density of 12.98 Wh k/g at the power density of 160.03 W/kg in the two-electrode supercapacitor system. Also, the initial capacity retention of p-Gr-40 is nearly 100% even after 10 000 charge-discharge cycles at 1 A/g, demonstrating its excellent cyclic stability. The enhanced electrochemical performance is contributed by the porous structure and heteroatoms doping (such as nitrogen).

     

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