MRS Meetings and Events

 

EN09.04.13 2024 MRS Spring Meeting

Synthesized Transition Metal-Based Nanosheet Electrocatalysts for Alkaline Water Electrolyzers

When and Where

Apr 23, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Seunghun Lee1,In Tae Kim2,Yoo Sei Park2,Yangdo Kim1

Pusan National University1,Chungbuk National University2

Abstract

Seunghun Lee1,In Tae Kim2,Yoo Sei Park2,Yangdo Kim1

Pusan National University1,Chungbuk National University2
Hydrogen is a completely carbon-free energy source with high energy density and conversion efficiency, and it has become a promising alternative to fossil fuels. The best way to produce green hydrogen without carbon emissions is through water electrolysis. Water electrolysis involves two reactions: the oxygen evolution reaction (OER) and the hydrogen evolution reaction (HER). Although HER is produce hydrogen, production efficiency is more directly associated with OER.<br/>The two most famous water electrolysis technologies are alkaline water electrolyzers (AWEs) and proton exchange membrane water electrolyzers (PEMWEs). The recently developed AEM electrolyzer exhibit both the advantage of AWE, PEM electrolyzers mentioned above. This electrolyzer can greatly reduce the ohmic loss using solid ionomer membrane and is operated in alkaline condition, allowing the use of non-precious metals as electrocatalysts. Although, the cost of hydrogen production can be reduced by using non-precious metal electrocatalysts, the performance of AEM water electrolyzers is still lower than that of PEM electrolyzers due to the sluggish electrocatalyst kinetics for oxygen evolution reaction (OER). To overcome this obstacle, it is strongly necessary to develop high-performance and cost-effective OER elctrocatalysts.<br/>In this study, we developed Cu(OH)2 nanosheets onto ZIF67 for OER electrocatalyst. The obtained material, labeled as CuOH2@ZIF67, improves its conductivity and intrinsic activity. In addition, the AEM electrolyzer equipped with CuOH2@ZIF-100 shows better performance at high current densities than that of RuO2 by reducing the mass transport of the AEM electrolyzer. Our approach is suitable for large-scale hydrogen production as an OER catalyst since it does not require precious metals and enables cost-effective, high-efficiency catalyst production through simple synthesis

Symposium Organizers

Christopher Barile, University of Nevada, Reno
Nathalie Herlin-Boime, CEA Saclay
Michel Trudeau, Concordia University
Edmund Chun Ming Tse, University Hong Kong

Session Chairs

Nathalie Herlin-Boime
Michel Trudeau
Edmund Chun Ming Tse

In this Session

EN09.04.02
Z-Scheme CBO@MoS2 System for Enhanced H2O2 Photosynthesis with Mechanistic Insights

EN09.04.03
Oxygen Evolution Reaction at Low Overpotential Catalyzed by Nanostructured CuO derived from 2 nm-Sized Colloidal Clusters generated by Laser Ablation at The Air-Liquid Interface

EN09.04.04
Schiff Bases Complexes prepared from Polyethylene Terephthalate and Amine for Alkaline Water Electrolysis

EN09.04.05
Laser-Synthesis of Nanostructured Carbides Molybdenum Catalysts for HER/OER Reactions

EN09.04.06
Sulfur-Doped Activated Carbon derived from Discarded Surgical Masks for High-Performance Supercapacitors

EN09.04.07
Mechanistic Insight into Dual-Atom Catalysts for The Oxygen Reduction Reaction

EN09.04.08
Electrochemical CO2 Reduction over Nanoparticles derived from an Oxidized Cu–Ni Intermetallic Alloy

EN09.04.10
Deciphering The Activity of Co-, Fe- Co-Doped NiS supported on Carbon Cloth prepared via a Novel Strategy for Promoted Water Splitting

EN09.04.11
Metal Nanoparticles Supported on Hexagonal Boron Nitride Nanosheets as an Efficient Catalysts for Oxygen Evolution Reaction

EN09.04.13
Synthesized Transition Metal-Based Nanosheet Electrocatalysts for Alkaline Water Electrolyzers

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