» Articles » PMID: 32671924

Advanced Electrocatalysis for Energy and Environmental Sustainability Via Water and Nitrogen Reactions

Overview
Journal Adv Mater
Date 2020 Jul 17
PMID 32671924
Citations 14
Authors
Affiliations
Soon will be listed here.
Abstract

Clean and efficient energy storage and conversion via sustainable water and nitrogen reactions have attracted substantial attention to address the energy and environmental issues due to the overwhelming use of fossil fuels. These electrochemical reactions are crucial for desirable clean energy technologies, including advanced water electrolyzers, hydrogen fuel cells, and ammonia electrosynthesis and utilization. Their sluggish reaction kinetics lead to inefficient energy conversion. Innovative electrocatalysis, i.e., catalysis at the interface between the electrode and electrolyte to facilitate charge transfer and mass transport, plays a vital role in boosting energy conversion efficiency and providing sufficient performance and durability for these energy technologies. Herein, a comprehensive review on recent progress, achievements, and remaining challenges for these electrocatalysis processes related to water (i.e., oxygen evolution reaction, OER, and oxygen reduction reaction, ORR) and nitrogen (i.e., nitrogen reduction reaction, NRR, for ammonia synthesis and ammonia oxidation reaction, AOR, for energy utilization) is provided. Catalysts, electrolytes, and interfaces between the two within electrodes for these electrocatalysis processes are discussed. The primary emphasis is device performance of OER-related proton exchange membrane (PEM) electrolyzers, ORR-related PEM fuel cells, NRR-driven ammonia electrosynthesis from water and nitrogen, and AOR-related direct ammonia fuel cells.

Citing Articles

Cooperative Active Sites on AgPtTiS for Enhanced Low-Temperature Ammonia Fuel Cell Electrocatalysis.

Wu T, Dhaka K, Luo M, Wang B, Wang M, Xi S Angew Chem Int Ed Engl. 2024; 64(6):e202418691.

PMID: 39587937 PMC: 11796334. DOI: 10.1002/anie.202418691.


Nanoarchitectonics for structural tailoring of yolk-shell architectures for electrochemical applications.

Wu H, Li J, Ji Q, Ariga K Sci Technol Adv Mater. 2024; 25(1):2420664.

PMID: 39539602 PMC: 11559037. DOI: 10.1080/14686996.2024.2420664.


Two-Dimensional MOF Constructed by a Binuclear-Copper Motif for High-Performance Electrocatalytic NO Reduction to NH.

Luo R, Li B, Wang Z, Chen M, Zhuang G, Li Q JACS Au. 2024; 4(10):3823-3832.

PMID: 39483236 PMC: 11522898. DOI: 10.1021/jacsau.4c00475.


Aqueous alternating electrolysis prolongs electrode lifespans under harsh operation conditions.

Liang J, Li J, Dong H, Li Z, He X, Wang Y Nat Commun. 2024; 15(1):6208.

PMID: 39043681 PMC: 11266351. DOI: 10.1038/s41467-024-50519-2.


Tailored Metal-Porphyrin Based Molecular Electrocatalysts for Enhanced Artificial Nitrogen Fixation to Green Ammonia.

Salerno G, Bettucci O, Manfredi N, Stendardo L, Veronese E, Metrangolo P Glob Chall. 2024; 8(7):2300345.

PMID: 39006055 PMC: 11237181. DOI: 10.1002/gch2.202300345.