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Title: Understanding the Role of Inter- and Intramolecular Promoters in Electro- and Photochemical CO 2 Reduction Using Mn, Re, and Ru Catalysts

Journal Article · · Accounts of Chemical Research

We report recycling of carbon dioxide to fuels and chemicals is a promising strategy for renewable energy storage. Carbon dioxide conversion can be achieved by (i) artificial photosynthesis using photoinduced electrons; (ii) electrolysis using electricity produced by photovoltaics; and (iii) thermal CO2 hydrogenation using renewable H2. The focus of our group’s research is on molecular catalysts, in particular coordination complexes of transition metals (e.g., Mn, Re, and Ru), which offer versatile platforms for mechanistic studies of photo- and electrochemical CO2 reduction. The interactions of catalytic intermediates with Lewis or Brønsted acids, hydrogen-bonding moieties, solvents, cations, etc., that function as promoters or cofactors have become increasingly important for efficient catalysis. These interactions may have dramatic effects on selectivity and rates by stabilizing intermediates or lowering transition state barriers, but they are difficult to elucidate and challenging to predict. We have been carrying out experimental and theoretical studies of CO2 reduction using molecular catalysts toward addressing mechanisms of efficient CO2 reduction systems with emphasis on those containing intramolecular (or pendent) and intermolecular (solution phase) additives. This Account describes the identification of reaction intermediates produced during CO2 reduction in the presence of triethanolamine or ionic liquids, the benefits of hydrogen-bonding interactions among intermediates or cofactors, and the complications of pendent phenolic donors/phenoxide bases under electrochemical conditions. Triethanolamine (TEOA) is a common sacrificial electron donor for photosensitizer excited state reductive quenching and has a long history of use in photocatalytic CO2 reduction. It also functions as a Brønsted base in conjunction with more potent sacrificial electron donors, such as 1,3-dimethyl-2-phenyl-2,3-dihydro-1H-benzo[d]imidazole (BIH). Deprotonation of the BIH•+ cation radical promotes irreversible photoinduced electron transfer by preventing charge recombination. Despite its wide use, most research to date has not considered the broader reactions of TEOA, including its direct interaction with CO2 or its influence on catalytic intermediates. We found that in acetonitrile, TEOA captures CO2 in the form of a zwitterionic adduct without any metal catalyst. In the presence of ruthenium carbonyl catalysts bearing α-diimine ligands, it participates in metal hydride formation, accelerates hydride transfer to CO2 to form the bound formate intermediate, and assists in the dissociation of formate anion from the catalyst ( J. Am. Chem. Soc. 2020, 142, 2413-2428). Hydrogen bonding and acid/base promoters are understood to interact with key catalytic intermediates, such as the metallocarboxylate or metallocarboxylic acid during CO2 reduction. The former is a high energy species, and hydrogen-bonding or Lewis acid-stabilization are beneficial. We have found that imidazolium-based ionic liquid cations can stabilize the doubly reduced form of the [ReCl(bpy)(CO)3] (bpy = 2,2'-bipyridine) electrocatalyst through both hydrogen-bonding and π–π interactions, resulting in CO2 reduction occurring at a more positive potential with a higher catalytic current ( J. Phys. Chem. Lett. 2014, 5, 2033-2038). Hydrogen bonding interactions between Lewis basic methoxy groups in the second coordination sphere of a Mn-based catalyst and the OH group of the Mn–COOH intermediate in the presence of a Brønsted acid were also found to promote C–(OH) bond cleavage, enabling access to a low-energy protonation-first pathway for CO2 reduction ( J. Am. Chem. Soc. 2017, 139, 2604-2618). The kinetics of forming the metallocarboxylic acid can be enhanced by internal acids, and its proton-induced C–OH bond cleavage to the metallocarbonyl and H2O is often the rate-limiting step. Therefore, proton movement organized by pendent hydrogen-bonding networks may also accelerate this step. In contrast, during electrolysis, OH groups in the second coordination sphere are deprotonated to the oxyanions, which deter catalytic CO2 reduction by directly binding CO2 to form the carbonate or by making an M–O bond in competition with CO2 binding ( Inorg. Chem. 2016, 55, 4582-4594). Our results emphasize that detailed mechanistic research is critical in discovering the design principles for improved catalysts.

Research Organization:
Brookhaven National Lab. (BNL), Upton, NY (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES); USDOE Office of Science (SC), Basic Energy Sciences (BES). Chemical Sciences, Geosciences & Biosciences Division
Grant/Contract Number:
SC0012704
OSTI ID:
1858023
Alternate ID(s):
OSTI ID: 1868520
Report Number(s):
BNL-222909-2022-JAAM
Journal Information:
Accounts of Chemical Research, Journal Name: Accounts of Chemical Research Vol. 55 Journal Issue: 5; ISSN 0001-4842
Publisher:
American Chemical SocietyCopyright Statement
Country of Publication:
United States
Language:
English

References (67)

Photocatalytic Reduction of Low Concentration of CO 2 journal October 2016
Manganese Catalysts with Bulky Bipyridine Ligands for the Electrocatalytic Reduction of Carbon Dioxide: Eliminating Dimerization and Altering Catalysis journal February 2014
Dynamics of the Electrochemical Behavior of Diimine Tricarbonyl Rhenium(I) Complexes in Strictly Aprotic Media journal June 1998
Electrocatalytic CO 2 Reduction by Imidazolium-Functionalized Molecular Catalysts journal September 2017
Electrochemical CO2 reduction catalyzed by ruthenium complexes [Ru(bpy)2(CO)2]2+ and [Ru(bpy)2(CO)Cl]+. Effect of pH on the formation of CO and HCOO- journal January 1987
Efficient photochemical reduction of CO 2 to CO by visible light irradiation of systems containing Re(bipy)(CO) 3 X or Ru(bipy) 3 2+ –Co 2+ combinations as homogeneous catalysts journal January 1983
Molecular quaterpyridine-based metal complexes for small molecule activation: water splitting and CO 2 reduction journal January 2020
Are Amines the Holy Grail for Facilitating CO 2 Reduction? journal March 2021
Mechanistic Insight through Factors Controlling Effective Hydrogenation of CO 2 Catalyzed by Bioinspired Proton-Responsive Iridium(III) Complexes journal April 2013
Mechanistic Elucidation of Dimer Formation and Strategies for Its Suppression in Electrochemical Reduction of Fac ‐Mn(bpy)(CO) 3 Br journal June 2021
Through-Space Charge Interaction Substituent Effects in Molecular Catalysis Leading to the Design of the Most Efficient Catalyst of CO 2 -to-CO Electrochemical Conversion journal December 2016
Molecular Catalysts with Intramolecular Re–O Bond for Electrochemical Reduction of Carbon Dioxide journal August 2020
Mechanistic insights on the non-innocent role of electron donors: reversible photocapture of CO 2 by Ru II -polypyridyl complexes journal January 2019
Photochemical carbon dioxide reduction catalyzed by bis(2,2'-bipyridine)dicarbonylruthenium(2+) using triethanolamine and 1-benzyl-1,4-dihydronicotinamide as an electron donor journal March 1990
CO 2 Hydrogenation to Formate and Methanol as an Alternative to Photo- and Electrochemical CO 2 Reduction journal August 2015
Electrocatalytic CO 2 Reduction with a Homogeneous Catalyst in Ionic Liquid: High Catalytic Activity at Low Overpotential journal May 2014
Electrochemical and IR/UV−Vis Spectroelectrochemical Studies of fac -[Mn(X)(CO) 3 (iPr-DAB)] n ( n = 0, X = Br, Me, Bz; n = +1, X = THF, MeCN, nPrCN, P(OMe) 3 ; iPr-DAB = 1,4-Diisopropyl-1,4-diaza-1,3-butadiene) at Variable Temperatures:  Relation between Electrochemical and Photochemical Generation of [Mn(CO) 3 (α-diimine)] - journal October 1997
Photocatalytic CO 2 reduction using metal complexes in various ionic liquids journal January 2020
Biochemical and artificial pathways for the reduction of carbon dioxide, nitrite and the competing proton reduction: effect of 2 nd sphere interactions in catalysis journal January 2021
Photochemical CO 2 Reduction Using Rhenium(I) Tricarbonyl Complexes with Bipyridyl‐Type Ligands with and without Second Coordination Sphere Effects journal March 2021
Reversible hydrogen storage using CO2 and a proton-switchable iridium catalyst in aqueous media under mild temperatures and pressures journal March 2012
Reaction mechanisms of catalytic photochemical CO2 reduction using Re(I) and Ru(II) complexes journal October 2018
Aqueous electrocatalytic CO 2 reduction using metal complexes dispersed in polymer ion gels journal January 2020
Influence of Weak Brønsted Acids on Electrocatalytic CO 2 Reduction by Manganese and Rhenium Bipyridine Catalysts journal January 2015
Electro- and Solar-Driven Fuel Synthesis with First Row Transition Metal Complexes journal October 2018
A review of iron and cobalt porphyrins, phthalocyanines and related complexes for electrochemical and photochemical reduction of carbon dioxide journal January 2015
Noninnocent Proton-Responsive Ligand Facilitates Reductive Deprotonation and Hinders CO 2 Reduction Catalysis in [Ru(tpy)(6DHBP)(NCCH 3 )] 2+ (6DHBP = 6,6′-(OH) 2 bpy) journal April 2016
Secondary-Sphere Effects in Molecular Electrocatalytic CO2 Reduction journal June 2019
Stabilization and Destabilization of the Ru?CO Bond During the 2,2?-Bipyridin-6-onato (bpyO)-Localized Redox Reaction of [Ru(terpy)(bpyO)(CO)](PF6) journal January 2005
Thermodynamic Aspects of Electrocatalytic CO 2 Reduction in Acetonitrile and with an Ionic Liquid as Solvent or Electrolyte journal October 2015
Unexpected Roles of Triethanolamine in the Photochemical Reduction of CO 2 to Formate by Ruthenium Complexes journal December 2019
Mechanistic aspects of CO2 reduction catalysis with manganese-based molecular catalysts journal November 2018
Immobilization of a Molecular Re Complex on MOF‐derived Hierarchical Porous Carbon for CO 2 Electroreduction in Water/Ionic Liquid Electrolyte journal September 2020
One- and two-electron pathways in the electrocatalytic reduction of CO 2 by fac-Re(bpy)(CO) 3 Cl (bpy = 2,2′-bipyridine) journal January 1985
Photocatalytic reduction of CO2 using metal complexes journal December 2015
Electrocatalytic Reduction of Carbon Dioxide with a Manganese(I) Tricarbonyl Complex Containing a Nonaromatic α-Diimine Ligand journal May 2014
Ionic Liquid-Mediated Selective Conversion of CO2 to CO at Low Overpotentials journal September 2011
Computational study on the reactivity of imidazolium-functionalized manganese bipyridyl tricarbonyl electrocatalysts [Mn[bpyMe(Im-R)](CO) 3 Br] + (R = Me, Me 2 and Me 4 ) for CO 2 -to-CO conversion over H 2 formation journal January 2021
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 journal January 2020
Selective and Efficient Photocatalytic CO 2 Reduction to CO Using Visible Light and an Iron-Based Homogeneous Catalyst journal November 2014
Enhanced Electrochemical CO 2 Reduction by a Series of Molecular Rhenium Catalysts Decorated with Second-Sphere Hydrogen-Bond Donors journal April 2020
A Local Proton Source Enhances CO 2 Electroreduction to CO by a Molecular Fe Catalyst journal October 2012
Formation of a metal-hydride bond and the insertion of carbon dioxide. Key steps in the electrocatalytic reduction of carbon dioxide to formate anion journal January 1991
Manganese and Rhenium Tricarbonyl Complexes Equipped with Proton Relays in the Electrochemical CO 2 Reduction Reaction journal November 2020
CO 2 capture by Mn( i ) and Re( i ) complexes with a deprotonated triethanolamine ligand journal January 2019
Push or Pull? Proton Responsive Ligand Effects in Rhenium Tricarbonyl CO 2 Reduction Catalysts journal December 2014
A Bi-functional Second Coordination Sphere for Electrocatalytic CO 2 Reduction: The Concerted Improvement by a Local Proton Source and Local Coulombic Interactions journal March 2020
Electrochemical Reductive Deprotonation of an Imidazole Ligand in a Bipyridine Tricarbonyl Rhenium(I) Complex journal November 2011
Turning on the Protonation-First Pathway for Electrocatalytic CO 2 Reduction by Manganese Bipyridyl Tricarbonyl Complexes journal February 2017
Photocatalytic CO2 reduction with high turnover frequency and selectivity of formic acid formation using Ru(II) multinuclear complexes journal August 2012
Second-coordination-sphere and electronic effects enhance iridium(iii)-catalyzed homogeneous hydrogenation of carbon dioxide in water near ambient temperature and pressure journal January 2012
Electrocatalytic reduction of CO2 in neat and water-containing imidazolium-based ionic liquids journal October 2020
Pendant Acid–Base Groups in Molecular Catalysts: H-Bond Promoters or Proton Relays? Mechanisms of the Conversion of CO 2 to CO by Electrogenerated Iron(0)Porphyrins Bearing Prepositioned Phenol Functionalities journal August 2014
Toward Combined Carbon Capture and Recycling: Addition of an Amine Alters Product Selectivity from CO to Formic Acid in Manganese Catalyzed Reduction of CO 2 journal September 2020
Distinct Mechanisms and Hydricities of Cp*Ir-Based CO 2 Hydrogenation Catalysts in Basic Water journal April 2021
CO 2 Capture by a Rhenium(I) Complex with the Aid of Triethanolamine journal October 2013
Mechanistic Contrasts between Manganese and Rhenium Bipyridine Electrocatalysts for the Reduction of Carbon Dioxide journal November 2014
Imidazolium- and Pyrrolidinium-Based Ionic Liquids as Cocatalysts for CO 2 Electroreduction in Model Molecular Electrocatalysis journal October 2020
Temperature-dependent reduction pathways of complexes fac-[Re(CO)3(N-R-imidazole)(1,10-phenanthroline)]+ (R=H, CH3) journal November 2013
Mechanism of the Formation of a Mn-Based CO 2 Reduction Catalyst Revealed by Pulse Radiolysis with Time-Resolved Infrared Detection journal April 2014
Electrochemical and Photochemical Reduction of CO 2 Catalyzed by Re(I) Complexes Carrying Local Proton Sources journal October 2018
Photochemical and Electrochemical Reduction of Carbon Dioxide to Carbon Monoxide Mediated by (2,2?-Bipyridine)tricarbonylchlororhenium(I) and Related Complexes as Homogeneous Catalysts journal December 1986
Synergistic Effects of Imidazolium-Functionalization on fac -Mn(CO) 3 Bipyridine Catalyst Platforms for Electrocatalytic Carbon Dioxide Reduction journal March 2019
Computational Study for CO 2 -to-CO Conversion over Proton Reduction Using [Re[bpyMe(Im-R)](CO) 3 Cl] + (R = Me, Me 2 , and Me 4 ) Electrocatalysts and Comparison with Manganese Analogues journal October 2021
Strong Impact of Intramolecular Hydrogen Bonding on the Cathodic Path of [Re(3,3′-dihydroxy-2,2′-bipyridine)(CO) 3 Cl] and Catalytic Reduction of Carbon Dioxide journal April 2020
Electrons, Photons, Protons and Earth-Abundant Metal Complexes for Molecular Catalysis of CO 2 Reduction journal November 2016
CO 2 Hydrogenation and Formic Acid Dehydrogenation Using Ir Catalysts with Amide-Based Ligands journal February 2020