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首页> 外文期刊>Nanoscale >Sulfur-doped porous reduced graphene oxide hollow nanosphere frameworks as metal-free electrocatalysts for oxygen reduction reaction and as supercapacitor electrode materials
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Sulfur-doped porous reduced graphene oxide hollow nanosphere frameworks as metal-free electrocatalysts for oxygen reduction reaction and as supercapacitor electrode materials

机译:Sulfur-doped多孔石墨烯氧化物减少空洞nanosphere框架不含金属的electrocatalysts对氧还原反应作为超级电容器电极材料

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摘要

Chemical doping with foreign atoms is an effective approach to significantly enhance the electrochemical performance of the carbon materials. Herein, sulfur-doped three-dimensional (3D) porous reduced graphene oxide (RGO) hollow nanosphere frameworks (S-PGHS) are fabricated by directly annealing graphene oxide (GO)-encapsulated amino-modified SiO2 nanoparticles with dibenzyl disulfide (DBDS), followed by hydrofluoric acid etching. The XPS and Raman spectra confirmed that sulfur atoms were successfully introduced into the PGHS framework via covalent bonds. The as-prepared S-PGHS has been demonstrated to be an efficient metal-free electrocatalyst for oxygen reduction reaction (ORR) with the activity comparable to that of commercial Pt/C (40%) and much better methanol tolerance and durability, and to be a supercapacitor electrode material with a high specific capacitance of 343 F g~(-1), good rate capability and excellent cycling stability in aqueous electrolytes. The impressive performance for ORR and supercapacitors is believed to be due to the synergistic effect caused by sulfur-doping enhancing the electrochemical activity and 3D porous hollow nanosphere framework structures facilitating ion diffusion and electronic transfer.
机译:与外国原子是一种有效的化学掺杂方法明显提高电化学性能的碳材料。(3 d)多孔石墨烯氧化物(RGO)中空的减少nanosphere框架(S-PGHS)是捏造的直接退火石墨烯氧化物(去)封装氨基改性二氧化硅纳米粒子与二苄基二硫(dbd),其次是氢氟酸腐蚀。和拉曼光谱证实,硫原子被成功引入PGHS吗框架通过共价键。S-PGHS已经证明是一个有效不含金属的electrocatalyst氧气减少与反应(ORR)的活动商业的Pt / C(40%)和好多了甲醇宽容和耐用性,是一个超级电容器电极材料具有高比电容343 F g ~(1),良好率能力和良好的循环稳定性水电解质。奥尔和超级电容器被认为是sulfur-doping带来的协同效应加强电化学活性和3 d多孔空心nanosphere框架结构促进离子扩散和电子转移。

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