氢氧化钴/杂原子掺杂石墨烯复合材料作为氧还原反应的电催化剂

Omar Benabdallah, Z. Edfouf, Siham Idrissi, Abdelfettah Lallaoui, Qiliang Wei, Xiaohua Yang, Shuhui Sun, F. C. E. Moursli
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摘要

采用水热法合成了氢氧化钴/氮、磷、硫三元掺杂石墨烯(Co(OH)2/NSPGr)作为氧还原反应催化剂的复合材料。采用旋转圆盘电极(RDE)和旋转环盘电极(RRDE)研究了催化剂样品在碱性介质中的ORR催化活性。与催化活性较差的Co(OH)2相比,Co(OH)2/NSPGr复合材料具有更好的催化性能,包括更高的正起始电位和更高的极限电流密度。此外,RRDE结果表明,复合材料经历了一个4电子电化学过程,并且过氧化氢% H2O2的产量很低。Co(OH)2/NSPGr复合材料性能的增强可归因于石墨烯的杂原子掺杂以及Co(OH)2与NSPGr之间的强化学偶联作用。
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Cobalt Hydroxide/Heteroatom Doped Graphene Composite as Electrocalyst for Oxygen Reduction Reaction
The composite Cobalt hydroxide/ternary nitrogen, phosphorus and sulfur doped graphene (Co(OH)2/NSPGr) as catalyst for oxygen reduction reaction (ORR), was synthesized by hydrothermal method. The catalytic activity for ORR of catalyst samples were studied by rotating disk electrode (RDE) and rotating ring-disk electrode (RRDE) in alkaline medium. Compared to Co(OH)2 which shows a poor catalytic activity, Co(OH)2/NSPGr composite exhibits better catalytic performances, including more positive onset potential and higher limiting current density. Moreover, RRDE results indicate that the composite undergoes a 4-electron electrochemical process as well as a low production of hydrogen peroxide % H2O2. The enhanced performances of Co(OH)2/NSPGr composite could be attributed to the effect of heteroatom doping of graphene and also the strong chemical coupling between Co(OH)2 and NSPGr.
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