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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Earthworm-like N, S-Doped carbon tube-encapsulated Co9S8 nanocomposites derived from nanoscaled metal-organic frameworks for highly efficient bifunctional oxygen catalysis
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Earthworm-like N, S-Doped carbon tube-encapsulated Co9S8 nanocomposites derived from nanoscaled metal-organic frameworks for highly efficient bifunctional oxygen catalysis

机译:蚯蚓样N,S掺杂的碳管 - 包封的CO9S8纳米复合材料衍生自纳米级金属 - 有机框架,用于高效的双官能氧催化

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摘要

Herein, a novel earthworm-like N, S-doped carbon nanotube-encapsulated Co9S8 hybrid was developed using the metal-organic framework (MOF) UiO-66-NH2 as a nanoscaled template via an immiscible two-phase incorporation. Highly efficient heteroatom-doping in graphene stacking generated a number of joints in the nanotubes, which harvested numerous defects as active sites for oxygen catalysis. Moreover, the Co9S8 nanoparticles were found to be tightly defined in the graphitic carbon shell, which were triggered by the spatial confinement of UiO-66-NH2. This nanostructure greatly enhanced the reaction kinetics and the stability of the catalyst. The carbon nanotube-Co9S8 composites via pyrolysis at 800 degrees C (Co9S8@CT-800) showed highly bifunctional catalytic activity for O-2 catalysis processes. The low overpotential for ORR obtained for Co9S8@CT-800 was comparable to that of commercial Pt/C, and the small Tafel slope of 72 mV dec(-1) for OER was better than that obtained for conventional RuO2. Density functional theory calculations revealed that the high activity of the developed nanocomposites for oxygen electrocatalysis in an alkaline medium was attributed to the synergistic effects of Co9S8 and the N-doped graphitic shell.
机译:在此,使用金属 - 有机框架(MOF)UIO-66-NH2作为纳米级模板,通过不混溶的两相掺入,通过作为纳米级模板进行新的蚯蚓样N,S掺杂的碳纳米管包封的CO9S8杂种。在石墨烯堆叠中高效杂原子掺杂在纳米管中产生了多个关节,其收获了许多缺陷作为氧催化的活性位点。此外,发现CO9S8纳米颗粒在石墨碳壳中紧密地限定,其通过UIO-66-NH2的空间限制引发。该纳米结构大大提高了反应动力学和催化剂的稳定性。通过800℃(CO9S8 @ CT-800)通过热解的碳纳米管-CO9S8复合材料显示出对O-2催化过程的高度双官能催化活性。对于CO9S8 @ CT-800获得的ORR的低过电位与商业PT / C的ORR,并且72mV DEC(-1)的小TAFEL斜率优于常规RUO2的优于所得的。密度函数理论计算显示,碱性介质中氧电常分的显影纳米复合材料的高活性归因于CO9S8和N掺杂石墨壳的协同作用。

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