Insights into the Interfacial Charge Transfer Dynamics in Semiconductor–Molecular Catalyst Assemblies for Photo–Induced CO2 Reduction

Author:

Chatterjee Tamal12ORCID,Domingo‐Tafalla Beatriu13ORCID,Ballester Pablo145ORCID,Palomares Emilio145ORCID

Affiliation:

1. Institute of Chemical Research of Catalonia (ICIQ)-CERCA Avinguda Països Catalans 16 43007 Tarragona Spain

2. CSIR-Advanced Materials and Processes Research Institute (AMPRI) Hoshangabad Road Bhopal Madhya Pradesh 462026 India

3. Universitat Rovira i Virgili (URV) Departament D'enginyeria electrònica Elèctrica i Automatica Avinguda Països Catalans 43007 Tarragona Spain

4. Catalan Institution for Research and Advanced Studies (ICREA) Passeig Lluís Companys, 23 08018 Barcelona Spain

5. Institute of Chemical Research of Catalonia (ICIQ)-CERCA. Avinguda Països Catalans 16 43007 Tarragona Spain

Abstract

AbstractThis mini–review summarises examples of photo and photoelectrochemical CO2 reduction reactions (CO2RR) using semiconductor–molecular catalyst–based hybrid assemblies in which studies of charge transfer dynamics were also performed. In these catalysts, the grand challenges are controlling ultra–fast one–electron charge separation and simultaneously governing its impact on the efficiency and product selectivity in the multielectron and multi–proton–assisted CO2RR. In practice, several unwanted electron recombination processes occur in the femtosecond to millisecond timescale range impacting the overall catalysis efficiency. Titanium di‐oxide (TiO2) nanoparticle, mesoporous TiO2 film, copper indium sulphide (CuInS2) quantum dots were used as semiconductor materials, in turn rhenium (I) bipyridine, cobalt (II) terpyridine, cobaloxamine complex, and iron (III) porphyrins were investigated as molecular catalysts. The results of the charge transfer dynamic studies operating in such hybrid systems shed light on their charge accumulation processes, their rate constants for the intramolecular charge transfer processes and the decay lifetimes of the different excited state species that are produced. Moreover, a comprehensive understanding of the catalysts’ charge transfer dynamics is crucial to identifying detrimental charge recombination pathways. These undesired pathways can be used as rational basis for improving the design of future multi–redox–driven hybrid catalysts.

Funder

Institut Català d'Investigació Química

Ministerio de Ciencia e Innovación

Institució Catalana de Recerca i Estudis Avançats

Publisher

Wiley

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