Molecular catalysis of CO 2 reduction: recent advances and perspectives in electrochemical and light-driven processes with selected Fe, Ni and Co aza macrocyclic and polypyridine complexes
Молекулярный катализ восстановления CO2: последние достижения и перспективы электрохимических и светостимулируемых процессов с использованием отдельных азамакроциклических и полипиридиновых комплексов Fe, Ni и Co
2020-01-01
SCID: 54.1/8h77qmh8
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CO2 reductionFe Ni Co complexeselectrochemical catalysisin situ spectroscopylight-driven catalysis
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Abstract (AI)
Earth-abundant Fe, Ni, and Co aza macrocyclic and polypyridine complexes have been thoroughly investigated for CO2 electrochemical and visible-light-driven reduction. Since the first reports in the 1970s, an enormous body of work has been accumulated regarding the two-electron two-proton reduction of the gas, along with mechanistic and spectroscopic efforts to rationalize the reactivity and establish guidelines for structure-reactivity relationships. The ability to fine tune the ligand structure and the almost unlimited possibilities of designing new complexes have led to highly selective and efficient catalysts. Recent efforts toward developing hybrid systems upon combining molecular catalysts with conductive or semi-conductive materials have converged to high catalytic performances in water solutions, to the inclusion of these catalysts into CO2 electrolyzers and photo-electrochemical devices, and to the discovery of catalytic pathways beyond two electrons. Combined with the continuous mechanistic efforts and new developments for in situ and in operando spectroscopic studies, molecular catalysis of CO2 reduction remains a highly creative approach.
Key Findings
1
Earth-abundant Fe, Ni, and Co aza macrocyclic and polypyridine complexes have been extensively developed for electrochemical and visible-light-driven CO2 reduction.
2
Hybridizing molecular catalysts with conductive or semiconductive materials has produced high catalytic performance in aqueous media and enabled integration into CO2 electrolyzers and photoelectrochemical devices.
3
In situ and operando spectroscopic advances are strengthening mechanistic understanding and guiding further development of molecular CO2-reduction catalysis.
4
Ligand-structure tuning enables highly selective and efficient molecular catalysts by establishing structure–reactivity relationships through mechanistic and spectroscopic studies.
5
Recent research has expanded catalytic pathways beyond the conventional two-electron, two-proton CO2 reduction process.
Research Object
Earth-abundant Fe, Ni, and Co aza macrocyclic and polypyridine molecular complexes used for electrochemical and visible-light-driven CO2 reduction
Research Subject
Catalytic activity, selectivity, efficiency, structure–reactivity relationships, and mechanistic pathways of CO2 reduction, including hybrid molecular–material systems and pathways beyond two-electron reduction
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2020-01-01
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