The importance of grand-canonical quantum mechanical methods to describe the effect of electrode potential on the stability of intermediates involved in both electrochemical CO2 reduction and hydrogen evolution
Literature Information
Haochen Zhang, William A. Goddard, III, Qi Lu, Mu-Jeng Cheng
The rational design of electrocatalysts to convert CO2 to fuel requires predicting the effect of the electrode potential (U) on the binding and structures of the intermediates involved in CO2 electrochemical reduction (CO2ER). In this study, we used grand-canonical quantum mechanics (GC-QM) to keep the potential constant during the reactions (rather than keeping the charge constant as in standard QM) to investigate the effect of U on adsorption free energies (ΔGs) of 14 CO2ER intermediates on Cu(111) as well as the intermediates involved in the competitive hydrogen evolution reaction (HER). In contrast to most previous theoretical studies where ΔGs were calculated under constant charge (= 0, neutral), we calculated ΔGs under constant potential (U = 0.0, −0.5, −1.0, and −1.5 VSHE). By comparing the ΔGs calculated under constant U (= 0.0 VSHE) to those calculated under constant charge, we found differences up to 0.22 eV which would change the rates at 298 K by a factor of about 5300. In particular we found that the adsorption of species with a CO functional group (i.e., *COOH, *CO, and *CHO) strengthened by up to 0.16 eV as U became more negative by 1 V, whereas the adsorption of –O– species (i.e., *OH, *OCH3, *COH, and *CHOH) weakened by up to 0.20 eV. For the (111) index surfaces of Cu, Au, Ag, Ir, Ni, Pd, Pt and Rh, we investigated the effect of U on the reaction free energy (ΔG) at pH = 0 for the crucial elementary steps for CO2ER (*CO + (H+/e−) → *CHO, ΔG = (ΔG*CHO − ΔG*CO) + eU) and HER (* + (H+/e−) → *H, ΔG = ΔG*H + eU. Our results indicated that the influence of U on (ΔG*CHO − ΔG*CO) was metal dependent. In contrast, the energy for converting a proton in solution to H* on the surface, ΔG*H, was barely affected by U (for the studied metals). Overall we found substantial differences (MAD > 0.18 eV) between the ΔGs calculated under U = −1.0 VSHE (relevant to experiments) and those calculated under constant charge (= 0, neutral) common to most theoretical investigations. Therefore, we strongly recommend application GC-QM to obtain accurate energetics for CO2ER.
Recommended Journals

Russian Chemical Bulletin

Current Opinion in Colloid & Interface Science

Russian Journal of Bioorganic Chemistry

Drug Discovery Today

Organic Process Research & Development

Russian Journal of General Chemistry

Russian Journal of Applied Chemistry

Saudi Pharmaceutical Journal

Acta Materialia

New Journal of Chemistry
Related Literature
Fabrication of a stable inorganic–organic hybrid multilayer film with uniform and dense inorganic nanoparticle deposition
Xurong Xu, Joong Tark Han, Kilwon Cho
DOI: 10.1039/B300581J
Ring-opening reactions of methylenecyclopropanes with diphenyl diselenide upon heating; formation of 3-phenylselenyl-2,5-dihydrofuran derivatives
Le-Ping Liu, Min Shi
DOI: 10.1039/B412823K
Selective growth of a less stable polymorph of 2-iodo-4-nitroaniline on a self-assembled monolayer template
Rupa Hiremath, Stephen W. Varney, Jennifer A. Swift
DOI: 10.1039/B411649F
Dispersing palladium nanoparticles using a water-in-oil microemulsion—homogenization of heterogeneous catalysis
Byunghoon Yoon, Hakwon Kim, Chien M. Wai
DOI: 10.1039/B211836J
Cyclodehydrogenation of di- and tetra(benzimidazol-2-yl)benzenes to give model heteroaromatic discotic systems
Weicheng Wu, Andrew. C. Grimsdale, Klaus Müllen
DOI: 10.1039/B301512M
Facile protocol for the highly regioselective and stereodivergent synthesis of substituted bishomoallylic alcohols from esters
Martin Oestreich, Fernando Sempere-Culler
DOI: 10.1039/B315758J
A novel migrative addition reaction of hydrazines to the diketone derivative of C60
Sho-ichi Iwamatsu, Fumiaki Ono
DOI: 10.1039/B302080K
Construction of a protein array on amyloid-like fibrils using co-assembly of designed peptides
Hiroyuki Kodama, Sachiko Matsumura, Taro Yamashita, Hisakazu Mihara
DOI: 10.1039/B409641J
Influence of EDA-π interactions in drug encapsulation using nanospheres
Sumit Kumar, Ravi Mosurkal, Virinder S. Parmar, Lynne A. Samuelson, Arthur C. Watterson, Jayant Kumar
DOI: 10.1039/B408993F
Facile resolution of constrained geometry indenyl-phenoxide ligation
Luke E. Turner, Matthew G. Thorn, Phillip E. Fanwick, Ian P. Rothwell
DOI: 10.1039/B212724E
You might also like
What industries use (1R,3S)-1,3-Cyclopentanediol (CAS: 16326-97-9)?
(1R,3S)-1,3-Cyclopentanediol finds applications in various industries. In the ph...
What precautions should be taken when handling N'-[4-(Dimethylamino)phenyl]-N,N-dimethyl-1,4-benzenediamine (CAS: 637-31-0)?
When handling N'-[4-(Dimethylamino)phenyl]-N,N-dimethyl-1,4-benzenediamine, it i...
Are there alternatives to 5-(2,4-Difluorophenyl)-2-methoxypyrimidine (CAS: 1352318-16-1) in synthesis?
There are several alternatives to 5-(2,4-Difluorophenyl)-2-methoxypyrimidine in ...
What regulatory guidelines apply to 1-(3-Methoxyphenoxy)propan-2-ol (CAS: 382141-68-6)?
1-(3-Methoxyphenoxy)propan-2-ol (CAS: 382141-68-6) must comply with the Globally...
Is Tetrodotoxin Citrate (CAS: 18660-81-6) safe?
Tetrodotoxin Citrate is extremely dangerous and should be handled with extreme c...
What are the main uses of 2-Methyl-2-propanyl [(1R,3S)-3-hydroxycyclopentyl]carbamate (CAS: 225641-84-9)?
2-Methyl-2-propanyl [(1R,3S)-3-hydroxycyclopentyl]carbamate (CAS: 225641-84-9) i...
How should waste containing 4-(2-Hydroxyhexafluoroisopropyl)Benzoic Acid (CAS: 16261-80-6) be handled?
Waste containing 4-(2-Hydroxyhexafluoroisopropyl)Benzoic Acid (CAS: 16261-80-6) ...
How is 2-Methyl-2-proanyl {(2S)-1-[(benzyloxy)amino]-3-hydroxy-3-methyl-1-oxo-2-butanyl}carbamate (CAS: 102507-19-7) typically synthesized?
2-Methyl-2-proanyl {(2S)-1-[(benzyloxy)amino]-3-hydroxy-3-methyl-1-oxo-2-butanyl...
What is Benzeneethanamine, α-ethyl-, hydrochloride (1:1) (CAS: 20735-15-3)?
Benzeneethanamine, α-ethyl-, hydrochloride (1:1) is an organic compound with the...
Are there alternatives to 3-{(E)-[4-(Dimethylamino)phenyl]diazenyl}benzoic acid (CAS: 20691-84-3) in synthesis?
In the synthesis of compounds similar to 3-{(E)-[4-(Dimethylamino)phenyl]diazeny...
Source Journal
Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.



![N,N'-1,2-Ethanediylbis[2-(vinylsulfonyl)acetamide] structure N,N'-1,2-Ethanediylbis[2-(vinylsulfonyl)acetamide] structure](https://static.chemtradehub.com/structs/667/66710-66-5-b556.webp)
