Powering the Future by Iron Sulfide Type Material (FexSy) Based Electrochemical Materials for Water Splitting and Energy Storage Applications: A Review

Author:

Farhan Ahmad1,Qayyum Wajeeha1,Fatima Urooj1,Nawaz Shahid2,Balčiūnaitė Aldona2,Kim Tak H.3,Srivastava Varsha4,Vakros John5,Frontistis Zacharias6,Boczkaj Grzegorz78ORCID

Affiliation:

1. Department of Chemistry University of Agriculture Faisalabad Faisalabad 38040 Pakistan

2. Department of Catalysis Center for Physical Sciences and Technology Sauletekio av. 3 Vilnius LT−10257 Lithuania

3. School of Environment and Science Griffith University 170 Kessels Road Nathan QLD 4111 Australia

4. Research Unit of Sustainable Chemistry Faculty of Technology University of Oulu Oulu FI−90014 Finland

5. Department of Chemical Engineering University of Patras Caratheodory 1, University Campus Patras GR 265 04 Greece

6. Department of Chemical Engineering University of Western Macedonia Kozani GR−50132 Greece

7. Department of Sanitary Engineering Faculty of Civil and Environmental Engineering Gdańsk University of Technology 11/12 Narutowicza Str. Gdańsk 80−233 Poland

8. EkoTech Center Gdańsk University of Technology G. Narutowicza St. 11/12 Gdansk 80−233 Poland

Abstract

AbstractWater electrolysis is among the recent alternatives for generating clean fuels (hydrogen). It is an efficient way to produce pure hydrogen at a rapid pace with no unwanted by‐products. Effective and cheap water‐splitting electrocatalysts with enhanced activity, specificity, and stability are currently widely studied. In this regard, noble metal‐free transition metal‐based catalysts are of high interest. Iron sulfide (FeS) is one of the essential electrocatalysts for water splitting because of its unique structural and electrochemical features. This article discusses the significance of FeS and its nanocomposites as efficient electrocatalysts for oxygen evolution reaction (OER), hydrogen evolution reaction (HER), oxygen reduction reaction (ORR), and overall water splitting. FeS and its nanocomposites have been studied also for energy storage in the form of electrode materials in supercapacitors and lithium‐ (LIBs) and sodium‐ion batteries (SIBs). The structural and electrochemical characteristics of FeS and its nanocomposites, as well as the synthesis processes, are discussed in this work. This discussion correlates these features with the requirements for electrocatalysts in overall water splitting and its associated reactions. As a result, this study provides a road map for researchers seeking economically viable, environmentally friendly, and efficient electrochemical materials in the fields of green energy production and storage.

Publisher

Wiley

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