Harnessing Lithium‐Mediated Green Ammonia Synthesis with Water Electrolysis Boosted by Membrane Electrolyzer with Polyoxometalate Proton Shuttles

J Jun Miao (Institute of Solid State Chemistry) C Cailing Chen (State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry, Jilin University, Qianjin Street 2699, Changchun 130012, P. R. China) L Li Cao (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.) R Reham Al Nuaimi (Center of Excellence for Renewable Energy and Storage Technologies Physical Science and Engineering Division King Abdullah University of Science and Technology Thuwal Saudi Arabia) Z Zhen Li K Kuo‐Wei Huang (Center for Renewable Energy and Storage Technologies (CREST) KAUST Catalysis Center (KCC) Physical Science and Engineering Division King Abdullah University of Science and Technology Thuwal 23955 Saudi Arabia) Z Zhiping Lai (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 Integrating water electrolysis (WE) with lithium‐mediated nitrogen reduction (Li‐NRR) offers a sustainable route for green ammonia production by directly utilizing protons from water oxidation, eliminating reliance on grey or blue hydrogen. Here, polyoxometalates (POMs) function as electron‐coupled proton buffers (ECPBs) to seamlessly link WE with Li‐NRR in a three‐compartment flow reactor comprising an aqueous anode, an organic cathode, and a gas feed chamber. POMs serve as proton shuttles while suppressing the competing hydrogen evolution reaction (HER), facilitating efficient ammonia synthesis. The addition of polymethyl methacrylate (PMMA) enhances catholyte hydrophobicity, mitigating water contamination. By optimizing ECPB concentration, a dynamic balance is achieved between lithium nitride intermediates (LiNxHy) formation and consumption, yielding ammonia at 573.7 ± 5.2 µg h⁻¹ cm⁻ 2 with a Faradaic efficiency of 54.2%. This design advances flow reactor technology by uniquely utilizing water oxidation as a direct proton source, bypassing conventional hydrogen oxidation methods. The use of POMs as proton shuttles establishes a new benchmark for green ammonia production, reinforcing its potential in sustainable chemistry.

Article Details

Volume / Issue Vol. 64, Issue 27
Published July 01, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

J

Jun Miao

Institute of Solid State Chemistry

C

Cailing Chen

State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry, Jilin University, Qianjin Street 2699, Changchun 130012, P. R. China

L

Li Cao

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.

R

Reham Al Nuaimi

Center of Excellence for Renewable Energy and Storage Technologies Physical Science and Engineering Division King Abdullah University of Science and Technology Thuwal Saudi Arabia

Z

Zhen Li

K

Kuo‐Wei Huang

Center for Renewable Energy and Storage Technologies (CREST) KAUST Catalysis Center (KCC) Physical Science and Engineering Division King Abdullah University of Science and Technology Thuwal 23955 Saudi Arabia

Z

Zhiping Lai

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.