Cha Wang Soo, Talapaneni Siddulu Naidu, Kempaiah Devaraju M, Joseph Stalin, Lakhi Kripal Singh, Al-Enizi Abdullah M, Park Dae-Hwan, Vinu Ajayan
Global Innovative Center for Advanced Nanomaterials (GICAN), Faculty of Engineering and Built Environment, The University of Newcastle (UON) Callaghan NSW 2308 Australia
Future Industries Institute (FII), Division of Information Technology Energy and Environment (DivITEE), University of South Australia Adelaide SA 5095 Australia.
RSC Adv. 2018 May 9;8(31):17017-17024. doi: 10.1039/c8ra01281d.
Highly ordered and three-dimensional (3-D) mesoporous carbon materials were prepared through a nano-hard templating approach using FDU-12 silica with tunable pore sizes as a template, which was synthesized a microwave-assisted method. Powder XRD and microscopic techniques such as HR-TEM, HR-SEM, and N adsorption-desorption techniques were employed to characterize the structure and textural properties of the prepared mesoporous carbon samples. The characterization results reveal that all the mesoporous carbon samples show a 3-D porous mesostructure with tunable pore diameters (5.7 to 9.4 nm) and a large specific surface area in the range from 451 to 1251 m g. The supercapacitive behavior of the cubic structured mesoporous carbons was determined using cyclic voltammetry, electrochemical impedance and charge-discharge measurements. The cubic mesoporous carbon materials exhibit a superior capacitive performance with a high specific capacitance value of 315.3 F g at the current density of 1 A g, which is much higher than that of hexagonally-ordered mesoporous carbon with large pore diameters, activated carbon, and carbon nanotubes. The materials also show excellent cyclic stability and extremely low resistance. The superior specific capacitance of these materials is attributed to the combination of excellent surface properties such as large specific surface area, large pore volume and uniform pore diameter, spherical morphology, and a 3-D porous system with cage-type pores.
采用纳米硬模板法,以孔径可调的FDU - 12二氧化硅为模板(该模板通过微波辅助法合成),制备了高度有序的三维(3 - D)介孔碳材料。采用粉末X射线衍射(XRD)以及高分辨透射电子显微镜(HR - TEM)、高分辨扫描电子显微镜(HR - SEM)和N吸附 - 脱附等微观技术对制备的介孔碳样品的结构和织构性质进行了表征。表征结果表明,所有介孔碳样品均呈现出孔径可调(5.7至9.4 nm)的三维多孔介观结构,比表面积在451至1251 m²/g范围内。利用循环伏安法、电化学阻抗和充放电测量等手段测定了立方结构介孔碳的超级电容性能。立方介孔碳材料在1 A/g的电流密度下表现出优异的电容性能,比电容值高达315.3 F/g,远高于大孔径六方有序介孔碳、活性炭和碳纳米管。这些材料还表现出优异的循环稳定性和极低的电阻。这些材料优异的比电容归因于其优异的表面性质(如大比表面积、大孔容和均匀孔径)、球形形态以及具有笼型孔的三维多孔体系的综合作用。