TY - JOUR
T1 - Pressure-Enhanced Electrocatalysis for Small-Molecule Conversion
AU - Hu, Botao
AU - Zhao, Di
AU - Tian, Benqiang
AU - Chen, Chen
AU - Zou, Zhigang
N1 - Publisher Copyright:
Copyright © 2025 Batao Hu et al.
PY - 2025
Y1 - 2025
N2 - High-pressure electrocatalysis has rapidly evolved into a versatile strategy for overcoming the solubility, mass transport, and kinetic limitations that beset ambient-pressure electrochemical conversions. By increasing the pressure, interfacial concentrations of key reactants such as CO2, CO, N2, and NO can be raised by 1 to 2 orders of magnitude, profoundly reshaping surface coverage of intermediates, local pH, and electric double-layer structure. Over the past 5 years, these effects have enabled record-level Faradaic efficiencies and industrially relevant current densities for the synthesis of formate, methane, multicarbon oxygenates, and ammonia. Coupled advances in reactor architecture—from pressure-tolerant H-cells and narrow-gap flow cells to zero-gap membrane electrode assembly stacks—now permit sustained operation at dozens of bar while maintaining energy efficiencies above 40%. Complementary operando spectroscopies capable of withstanding harsh conditions have elucidated pressure-controlled reaction pathways. Our work aims to advance the electrochemical synthesis of fundamental chemicals, positioning high-pressure electrochemical synthesis as a viable and transformative solution.
AB - High-pressure electrocatalysis has rapidly evolved into a versatile strategy for overcoming the solubility, mass transport, and kinetic limitations that beset ambient-pressure electrochemical conversions. By increasing the pressure, interfacial concentrations of key reactants such as CO2, CO, N2, and NO can be raised by 1 to 2 orders of magnitude, profoundly reshaping surface coverage of intermediates, local pH, and electric double-layer structure. Over the past 5 years, these effects have enabled record-level Faradaic efficiencies and industrially relevant current densities for the synthesis of formate, methane, multicarbon oxygenates, and ammonia. Coupled advances in reactor architecture—from pressure-tolerant H-cells and narrow-gap flow cells to zero-gap membrane electrode assembly stacks—now permit sustained operation at dozens of bar while maintaining energy efficiencies above 40%. Complementary operando spectroscopies capable of withstanding harsh conditions have elucidated pressure-controlled reaction pathways. Our work aims to advance the electrochemical synthesis of fundamental chemicals, positioning high-pressure electrochemical synthesis as a viable and transformative solution.
UR - https://www.scopus.com/pages/publications/105015667760
U2 - 10.34133/energymatadv.0359
DO - 10.34133/energymatadv.0359
M3 - Review article
AN - SCOPUS:105015667760
SN - 2692-7640
VL - 6
JO - Energy Material Advances
JF - Energy Material Advances
M1 - 0359
ER -