dc.contributor.author
Fernández, Sergio
dc.contributor.author
Franco, Federico
dc.contributor.author
Casadevall, Carla
dc.contributor.author
Martin-Diaconescu, Vlad
dc.contributor.author
Luis, Josep María
dc.contributor.author
Lloret-Fillol, Julio
dc.date.accessioned
2020-01-21T13:52:27Z
dc.date.accessioned
2024-04-23T10:19:40Z
dc.date.available
2020-12-09T01:45:05Z
dc.date.available
2024-04-23T10:19:40Z
dc.date.issued
2019-12-10
dc.identifier.uri
https://hdl.handle.net/2072/368580
dc.description.abstract
A mechanistic understanding of electro- and photocatalytic CO2 reduction is crucial to develop strategies to overcome catalytic bottlenecks. In this regard, for a new CO2-to-CO reduction cobalt aminopyridine catalyst, a detailed experimental and theoretical mechanistic study is herein presented toward the identification of bottlenecks and potential strategies to alleviate them. The combination of electrochemistry and in situ spectroelectrochemistry together with spectroscopic techniques led us to identify elusive key electrocatalytic intermediates derived from complex [LN4Co(OTf)2] (1) (LN4 = 1-[2-pyridylmethyl]-4,7-dimethyl-1,4,7-triazacyclononane) such as a highly reactive cobalt(I) (1(I)) and a cobalt(I) carbonyl (1(I)-CO) species. The combination of spectroelectrochemical studies under CO2, 13CO2, and CO with DFT disclosed that 1(I) reacts with CO2 to form the pivotal 1(I)-CO intermediate at the 1(II/I) redox potential. However, at this reduction potential, the formation of 1(I)-CO restricts the electrocatalysis due to the endergonicity of the CO release step. In agreement with the experimentally observed CO2-to-CO electrocatalysis at the CoI/0 redox potential, computational studies suggested that the electrocatalytic cycle involves striking metal carbonyls. In contrast, under photochemical conditions, the catalysis smoothly proceeds at the 1(II/I) redox potential. Under the latter conditions, it is proposed that the electron transfer to form 1(I)-CO from 1(II)-CO is under diffusion control. Then, the CO release from 1(II)-CO is kinetically favored, facilitating the catalysis. Finally, we have found that visible-light irradiation has a positive impact under electrocatalytic conditions. We envision that light irradiation can serve as an effective strategy to circumvent the CO poisoning and improve the performance of CO2 reduction molecular catalysts.
dc.format.extent
120 p.
cat
dc.rights
L'accés als continguts d'aquest document queda condicionat a l'acceptació de les condicions d'ús establertes per la següent llicència Creative Commons:http://creativecommons.org/licenses/by-nc-nd/4.0/
dc.source
RECERCAT (Dipòsit de la Recerca de Catalunya)
dc.title
A Unified Electro- and Photocatalytic CO2 to CO Reduction Mechanism with Aminopyridine Cobalt Complexes
cat
dc.type
info:eu-repo/semantics/article
cat
dc.type
info:eu-repo/semantics/acceptedVersion
cat
dc.embargo.terms
12 mesos
cat
dc.relation.projectID
ERCCG- 2014-648304
cat
dc.relation.projectID
DIUE 2014SGR931
cat
dc.relation.projectID
CTQ2016- 80038-R
cat
dc.relation.projectID
PGC2018-098212-B-C22
cat
dc.identifier.doi
https://doi.org/10.1021/jacs.9b06633
dc.rights.accessLevel
info:eu-repo/semantics/openAccess