Electrocatalyst Performances in Direct Alcohol Fuel Cells: Defect Engineering Protocols, Electrocatalytic Pathways, Key Parameters for Improvement, and Breakthroughs on the Horizon

Author:

Matthews Thabo1ORCID,Mbokazi Siyabonga Patrick1,Dolla Tarekegn Heliso23,Gwebu Sandile Surprise1ORCID,Mugadza Kudzai14ORCID,Raseruthe Katlego1ORCID,Sikeyi Ludwe Luther5ORCID,Adegoke Kayode Adesina1ORCID,Saliu Oluwaseyi Damilare1ORCID,Adekunle Abolanle Saheed6ORCID,Ndungu Patrick7,Maxakato Nobanathi Wendy1ORCID

Affiliation:

1. Department of Chemical Sciences University of Johannesburg Doornfontein 2028 South Africa

2. Department of Chemistry Wolaita Sodo University P.O.Box 138 Wolaita Sodo Ethiopia

3. Department of Chemical Engineering University of Capetown Rondebosch Cape Town 770 South Africa

4. Institute of Materials Science, Processing and Engineering Technology Chinhoyi University of Technology P. Bag 7724 Chinhoyi Zimbabwe

5. Molecular Sciences Institute School of Chemistry University of Witwatersrand Braamfontein 2050 South Africa

6. Department of Chemistry Obafemi Awolowo University PMB 220005 Osun Nigeria

7. Department of Chemistry University of Pretoria Pretoria 0001 South Africa

Abstract

In direct alcohol fuel cells (DAFCs), energy conversion co‐occurs at the anode (alcohol oxidation reaction [AOR]) and cathode (oxygen reduction reaction [ORR]). The sluggishness of AOR and ORR needs highly electrocatalytically active and stable electrocatalysts that boost electrokinetics, which is central in electrocatalysts’ architectural design and modulation. This design entails enhanced engineering synthesis protocols, heteroatomic doping, metallic doping/alloying, and deliberate introduction of defective motifs within the electrocatalyst matrix. The electrocatalyst activity and behavior depend on the electrocatalysts’ nature, type, composition, and reaction media, acidic or alkaline. Alkaline media permits cheap nonplatinum group metals. This review elucidates the roles and electrocatalytic pathways on different AOR and ORR electrocatalysts and outlines the aspects distinguishing ORR in alkaline and acidic media. It gives up‐to‐date and ultramodern strategies, protocols, and underlying mechanisms pointing to the efficacy and efficiency of electrocatalysts. The focus centers on heteroatomic, metallic dopants, defects effects correlated to electrocatalytic properties and experimental and theoretical findings. For the advancement in the field, the present study discusses critical parameters for improving the performances of electrocatalysts for DAFCs and breakthroughs on the horizon. Conclusively, knowledge gaps and prospects of these materials for industrial viability and reigning futuristic research directions are presented.

Publisher

Wiley

Subject

General Earth and Planetary Sciences,General Environmental Science

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