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Understanding and Tuning Charge Dynamics in Carbon Nitride/Cobalt(II) Complex Hybrids for Enhanced Photocatalytic CO<sub>2</sub> Reduction

Ying Zhang, Ming Cao, Hao Feng, Dong Liu, Qiang Li

2023ACS Catalysis28 citationsDOI

Abstract

Semiconductor/metal complex hybrids are promising photocatalysts for CO 2 reduction. A comprehensive mechanism investigation on charge dynamics was carried out for a hybrid g -C 3 N 4 /[Co(bpy) 3 ] 2+ (bpy = 2,2′-bipyridine) photocatalytic system by using a combination of in situ UV–vis and resonance Raman spectroscopies, electrochemistry, and spectroelectrochemistry. A singly reduced [Co(bpy) 2 ] + species binding to CO 2 was directly identified as an important intermediate. The excessive accumulation of this transformed [Co III (bpy) 2 CO 2 ] + intermediate indicates that the subsequent CO 2 reduction reaction is the main rate-limiting process. Built on these findings, the heterosystem was modified to g -C 3 N 4 /[Co(dmbpy) 3 ] 2+, where dmbpy = 4,4′-dimethyl-2,2′-bipyridine. The electron affinity of the cobalt complex segment and thereby the specific CO 2 binding were enhanced. The refined charge dynamics led to 5.4 times enhanced photocatalytic CO 2 -to-CO conversion, with a selectivity of over 85% and an apparent quantum yield of 1.96% at 400 nm. This study provides an applicable spectroscopic approach to investigate in-depth charge-transfer characteristics and identify the main rate-limiting process, as well as shows the significance of rational design based on mechanism understanding.

Topics & Concepts

PhotocatalysisCobaltCarbon nitrideQuantum yieldPhotochemistryMaterials scienceRaman spectroscopyRate-determining stepSelectivityYield (engineering)CatalysisBipyridineElectrochemistryMetalRedoxChemistryPhysical chemistryInorganic chemistryFluorescenceCrystallographyElectrodeOrganic chemistryCrystal structurePhysicsQuantum mechanicsMetallurgyOpticsCO2 Reduction Techniques and CatalystsAdvanced Photocatalysis TechniquesMetal-Organic Frameworks: Synthesis and Applications
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