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Immobilization of “Capping Arene” Cobalt(II) Complexes on Ordered Mesoporous Carbon for Electrocatalytic Water Oxidation

过电位 催化作用 齿合度 化学 无机化学 电化学 结晶学 物理化学 晶体结构 有机化学 电极
作者
Chang Liu,Ana M. Geer,Christopher Webber,Charles B. Musgrave,Shunyan Gu,Grayson Johnson,Diane A. Dickie,Sonia Chabbra,Alexander Schnegg,Hua Zhou,Chengjun Sun,Sooyeon Hwang,William A. Goddard,Sen Zhang,T. Brent Gunnoe
出处
期刊:ACS Catalysis [American Chemical Society]
卷期号:11 (24): 15068-15082 被引量:8
标识
DOI:10.1021/acscatal.1c04617
摘要

We report the synthesis, characterization, and electrocatalytic water oxidation activity of two cobalt complexes, (6-FP)Co(NO3)2 (1) (6-FP = 8,8′-(1,2-phenylene)diquinoline) and (5-FP)Co(NO3)2 (2) (5-FP = 1,2-bis(N-7-azaindolyl)benzene), containing “capping arene” bidentate ligands with nitrogen atom donors. The cobalt complexes 1 and 2 were supported on ordered mesoporous carbon (OMC) by π–π stacking, resulting in heterogenized cobalt materials 6-FP-Co-OMC-1 and 5-FP-Co-OMC-2, respectively, and studied for electrocatalytic water oxidation. We find that 6-FP-Co-OMC-1 exhibits an overpotential of 355 mV for a current density of 10 mA cm–2 and a turnover frequency (TOF) of ∼0.53 s–1 at an overpotential of 400 mV at pH 14. 6-FP-Co-OMC-1 exhibits activity that is ∼1.6 times that of 5-FP-Co-OMC-2, which gives a TOF of 0.32 s–1 at 400 mV overpotential. The structural stability of the single-atom Co site was demonstrated for 6-FP-Co-OMC-1 using X-ray absorption spectroscopy for the molecular complex supported on OMC, but slow degradation in catalyst activity can be attributed to eventual formation of Co oxide clusters. DFT computations of electrocatalytic water oxidation using the molecular complexes as models provide a description of the catalytic mechanism. These studies reveal that the mechanism for O–O bond formation involves an intermediate CoIV oxo complex that undergoes an intramolecular reductive O–O coupling to form a CoII–OOH species. Further, the calculations predict that the molecular 6-FP-Co structure is more active for electrocatalytic water oxidation than 5-FP-Co, which is consistent with experimental studies of 6-FP-Co-OMC-1 and 5-FP-Co-OMC-2, highlighting the possibility that the ligand structure influences the catalytic activity of the supported molecular catalysts.

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