Selective Electrocatalytic CO <sub>2</sub> Reduction to Methanol: A Roadmap toward Practical Implementation

A Abdulrahman Allangawi (KAUST Catalysis Center (KCC) Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia) X Xiangyun T. Xiao (Center for Renewable Energy and Storage Technologies (CREST), Physical Science and Engineering Division) X Xiao Ma (State Key Laboratory of Solidification Processing) M Mayasem Alsuhami (Fuels &amp; Chemicals Division, Research &amp; Development Center Saudi Aramco Dhahran 31311 Saudi Arabia) M Mohd Adnan Khan R Rashed Aleisa Y Yoji Kobayashi (KAUST Catalysis Center (KCC) Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia) W Wan‐Lu Li (Aiiso Yufeng Li Family Department of Chemical and Nano Engineering University of California La Jolla California USA) M Magnus Rueping (Division of Physical Sciences and Engineering) J Jorge Gascon H Huabin Zhang (Center of Excellence for Renewable Energy and Storage Technologies (CREST), Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia.)

Abstract

Abstract Electrocatalytic CO 2 reduction to methanol (MeOH) unites two urgent global needs, carbon recycling and renewable energy storage, into a single, compelling chemical transformation. According to recent techno‐economic analyses, commercially competitive MeOH production (at ≈$190 per ton) can be achieved via electroreduction by meeting practical targets for current density, Faradaic efficiency (FE), and stability. Moreover, MeOH's high energy density (16 MJ L −1 ), substantial hydrogen content (100 g H 2 per L), and low storage and transport costs further underscore its strong economic potential. Yet, the complexity of the six‐electron–proton transfer (ET–PT) process that governs its formation remains intrinsically complex, with competing pathways threatening selectivity at every stage. This review critically examines current mechanistic insights, highlighting key intermediates such as CO and OCH 3 , and demonstrating how catalyst surfaces and reaction conditions profoundly influence pathway divergence. We highlight recent advances in catalyst development that exploit a fundamental, molecular‐level understanding of intermediate stabilization to deliver unprecedented MeOH selectivity and activity. Through detailed analysis of operational parameters—including mass transport dynamics, electrolyte composition, and applied potentials—this work provides a comprehensive framework for rational catalyst development. Together, these insights converge design principles for next‐generation electrocatalysts capable of selectively converting CO 2 ‐to‐MeOH at scale, advancing economically viable and environmentally sustainable MeOH production.

Article Details

Volume / Issue Vol. 64, Issue 52
Published December 22, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (11)

A

Abdulrahman Allangawi

KAUST Catalysis Center (KCC) Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia

X

Xiangyun T. Xiao

Center for Renewable Energy and Storage Technologies (CREST), Physical Science and Engineering Division

X

Xiao Ma

State Key Laboratory of Solidification Processing

M

Mayasem Alsuhami

Fuels &amp; Chemicals Division, Research &amp; Development Center Saudi Aramco Dhahran 31311 Saudi Arabia

M

Mohd Adnan Khan

R

Rashed Aleisa

Y

Yoji Kobayashi

KAUST Catalysis Center (KCC) Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia

W

Wan‐Lu Li

Aiiso Yufeng Li Family Department of Chemical and Nano Engineering University of California La Jolla California USA

M

Magnus Rueping

Division of Physical Sciences and Engineering

J

Jorge Gascon

H

Huabin Zhang

Center of Excellence for Renewable Energy and Storage Technologies (CREST), Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia.