TY - JOUR
T1 - Ligand-modified nanoparticle surfaces influence CO electroreduction selectivity
AU - Shirzadi, Erfan
AU - Jin, Qiu
AU - Zeraati, Ali Shayesteh
AU - Dorakhan, Roham
AU - Goncalves, Tiago J.
AU - Abed, Jehad
AU - Lee, Byoung Hoon
AU - Rasouli, Armin Sedighian
AU - Wicks, Joshua
AU - Zhang, Jinqiang
AU - Ou, Pengfei
AU - Boureau, Victor
AU - Park, Sungjin
AU - Ni, Weiyan
AU - Lee, Geonhui
AU - Tian, Cong
AU - Meira, Debora Motta
AU - Sinton, David
AU - Siahrostami, Samira
AU - Sargent, Edward H.
N1 - Publisher Copyright:
© The Author(s) 2024.
PY - 2024/12
Y1 - 2024/12
N2 - Improving the kinetics and selectivity of CO2/CO electroreduction to valuable multi-carbon products is a challenge for science and is a requirement for practical relevance. Here we develop a thiol-modified surface ligand strategy that promotes electrochemical CO-to-acetate. We explore a picture wherein nucleophilic interaction between the lone pairs of sulfur and the empty orbitals of reaction intermediates contributes to making the acetate pathway more energetically accessible. Density functional theory calculations and Raman spectroscopy suggest a mechanism where the nucleophilic interaction increases the sp2 hybridization of CO(ad), facilitating the rate-determining step, CO* to (CHO)*. We find that the ligands stabilize the (HOOC–CH2)* intermediate, a key intermediate in the acetate pathway. In-situ Raman spectroscopy shows shifts in C–O, Cu–C, and C–S vibrational frequencies that agree with a picture of surface ligand-intermediate interactions. A Faradaic efficiency of 70% is obtained on optimized thiol-capped Cu catalysts, with onset potentials 100 mV lower than in the case of reference Cu catalysts.
AB - Improving the kinetics and selectivity of CO2/CO electroreduction to valuable multi-carbon products is a challenge for science and is a requirement for practical relevance. Here we develop a thiol-modified surface ligand strategy that promotes electrochemical CO-to-acetate. We explore a picture wherein nucleophilic interaction between the lone pairs of sulfur and the empty orbitals of reaction intermediates contributes to making the acetate pathway more energetically accessible. Density functional theory calculations and Raman spectroscopy suggest a mechanism where the nucleophilic interaction increases the sp2 hybridization of CO(ad), facilitating the rate-determining step, CO* to (CHO)*. We find that the ligands stabilize the (HOOC–CH2)* intermediate, a key intermediate in the acetate pathway. In-situ Raman spectroscopy shows shifts in C–O, Cu–C, and C–S vibrational frequencies that agree with a picture of surface ligand-intermediate interactions. A Faradaic efficiency of 70% is obtained on optimized thiol-capped Cu catalysts, with onset potentials 100 mV lower than in the case of reference Cu catalysts.
UR - https://www.scopus.com/pages/publications/85189468477
U2 - 10.1038/s41467-024-47319-z
DO - 10.1038/s41467-024-47319-z
M3 - Article
C2 - 38582773
AN - SCOPUS:85189468477
SN - 2041-1723
VL - 15
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 2995
ER -