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Three-Dimensional Macroporous Polypyrrole-Derived Graphene Electrode Prepared by the Hydrogen Bubble Dynamic Template for Supercapacitors and Metal-Free Catalysts

机译:氢气泡动态模板制备超级电容器和无金属催化剂的三维大孔聚吡咯衍生石墨烯电极

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摘要

We report a general method for the fabrication of three-dimensional (3D) macroporous graphene/conducting polymer modified electrode and nitrogen-doped graphene modified electrode. This method involves three consecutive steps. First, the 3D macroporous graphene (3D MG) electrode was fabricated electrochemically by reducing graphene oxide dispersion on different conducting substrates and used hydrogen bubbles as the dynamic template. The morphology and pore size of 3D MG could be governed by the use of surfactants and the dynamics of bubble generation and departure. Second, 3D macroporous graphene/polypyrrole (MGPPy) composites were constructed via directly electropolymerizing pyrrole monomer onto the networks of 3D MG. Due to the benefit of the good conductivity of 3D MG and pseudocapacitance of PPy, the composites manifest outstanding area specific capacitance of 196 mF cm(-2) at a current density of 1 mA cm(-2). The symmetric supercapacitor device assembled by the composite materials had a good capacity property. Finally, the nitrogen-doped MGPPy (N-MGPPy or MGPPy-X) with 3D macroporous nanostructure and well-regulated nitrogen doping was prepared via thermal treatment of the composites. The resultant N-MGPPy electrode was explored as a good electrocatalyst for the oxygen reduction reaction (ORR) with the current density value of 5.56 mA cm(-2) (-0.132 V vs Ag/AgC1). Moreover, the fuel tolerance and durability under the electrochemical environment of the N-MGPPy catalyst were found to be superior to the Pt/C catalyst.
机译:我们报告了三维(3D)大孔石墨烯/导电聚合物改性电极和氮掺杂石墨烯改性电极制造的一般方法。此方法涉及三个连续步骤。首先,通过减少氧化石墨烯在不同导电基材上的分散性并以氢气泡为动态模板,通过电化学方法制备3D大孔石墨烯(3D MG)电极。 3D MG的形态和孔径可通过使用表面活性剂以及气泡产生和离开的动力学来控制。其次,通过将吡咯单体直接电聚合到3D MG的网络上,构造3D大孔石墨烯/聚吡咯(MGPPy)复合材料。由于3D MG的良好电导率和PPy的拟电容的优势,复合材料在1 mA cm(-2)的电流密度下表现出出色的196 mF cm(-2)的面积比电容。由复合材料组装而成的对称超级电容器装置具有良好的容量性能。最后,通过对复合材料进行热处理,制备了具有3D大孔纳米结构和氮调控良好的氮掺杂MGPPy(N-MGPPy或MGPPy-X)。所得的N-MGPPy电极被用作氧还原反应(ORR)的良好电催化剂,电流密度值为5.56 mA cm(-2)(-Ag / AgCl为-0.132 V)。此外,发现N-MGPPy催化剂在电化学环境下的燃料耐受性和耐久性优于Pt / C催化剂。

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