Recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: A review

In this article, a brief overview of manganese oxide nanomaterials (NMs) potential towards oxygen reduction reaction (ORR) for microbial fuel cell (MFC), bioremediations, and battery applications is discussed. It's known that using non-renewable fossil fuels as a direct energy source causes gre...

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Main Authors: Yilkal Dessie, Sisay Tadesse, Rajalakshmanan Eswaramoorthy, Buzuayehu Abebe
Format: Article
Language:English
Published: Elsevier 2019-09-01
Series:Journal of Science: Advanced Materials and Devices
Online Access:http://www.sciencedirect.com/science/article/pii/S2468217919302023
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spelling doaj-ff5c496eefcb47d794604d16e990de0b2020-11-24T21:25:52ZengElsevierJournal of Science: Advanced Materials and Devices2468-21792019-09-0143353369Recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: A reviewYilkal Dessie0Sisay Tadesse1Rajalakshmanan Eswaramoorthy2Buzuayehu Abebe3Department of Applied Chemistry, Adama Science and Technology University, Adama, Ethiopia; Corresponding author.Department of Chemistry, Hawassa University, Hawassa, EthiopiaDepartment of Applied Chemistry, Adama Science and Technology University, Adama, EthiopiaDepartment of Applied Chemistry, Adama Science and Technology University, Adama, EthiopiaIn this article, a brief overview of manganese oxide nanomaterials (NMs) potential towards oxygen reduction reaction (ORR) for microbial fuel cell (MFC), bioremediations, and battery applications is discussed. It's known that using non-renewable fossil fuels as a direct energy source causes greenhouse gas emissions. Safe, sustainable and renewable energy sources for biofuel cell (BFC) and metal-air batteries hold considerable potential for clean electrical energy generators without the need for a thermal cycle. In an electrochemical reaction system, the four-electron reduction from molecular oxygen at the air-cathode surface to hydroxide ion or water at a reasonably low overpotential was the ultimate goal of many investigations and plays a vital role in metal-air batteries and fuel cell device systems. Different MnxOy nanostructured materials, from Biofunctional structural catalysts up to their electrocatalytic contributions towards ORR are discussed. Brief descriptions of ORR, principle strategy and mechanism, as well as recent developments of cationic dopants and electrolytic media, effect on the air-cathode surface of manganese oxide nanocatalyst are also discussed. Finally, challenges associated with platinum and carbon support platinum in improving electron and charge transfer between biocatalyst and air-cathode electrode are summarized. Keywords: Manganese oxide nanomaterials, Microbial fuel cell, Bioremediations, Batteries, Oxygen reduction reactionhttp://www.sciencedirect.com/science/article/pii/S2468217919302023
collection DOAJ
language English
format Article
sources DOAJ
author Yilkal Dessie
Sisay Tadesse
Rajalakshmanan Eswaramoorthy
Buzuayehu Abebe
spellingShingle Yilkal Dessie
Sisay Tadesse
Rajalakshmanan Eswaramoorthy
Buzuayehu Abebe
Recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: A review
Journal of Science: Advanced Materials and Devices
author_facet Yilkal Dessie
Sisay Tadesse
Rajalakshmanan Eswaramoorthy
Buzuayehu Abebe
author_sort Yilkal Dessie
title Recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: A review
title_short Recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: A review
title_full Recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: A review
title_fullStr Recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: A review
title_full_unstemmed Recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: A review
title_sort recent developments in manganese oxide based nanomaterials with oxygen reduction reaction functionalities for energy conversion and storage applications: a review
publisher Elsevier
series Journal of Science: Advanced Materials and Devices
issn 2468-2179
publishDate 2019-09-01
description In this article, a brief overview of manganese oxide nanomaterials (NMs) potential towards oxygen reduction reaction (ORR) for microbial fuel cell (MFC), bioremediations, and battery applications is discussed. It's known that using non-renewable fossil fuels as a direct energy source causes greenhouse gas emissions. Safe, sustainable and renewable energy sources for biofuel cell (BFC) and metal-air batteries hold considerable potential for clean electrical energy generators without the need for a thermal cycle. In an electrochemical reaction system, the four-electron reduction from molecular oxygen at the air-cathode surface to hydroxide ion or water at a reasonably low overpotential was the ultimate goal of many investigations and plays a vital role in metal-air batteries and fuel cell device systems. Different MnxOy nanostructured materials, from Biofunctional structural catalysts up to their electrocatalytic contributions towards ORR are discussed. Brief descriptions of ORR, principle strategy and mechanism, as well as recent developments of cationic dopants and electrolytic media, effect on the air-cathode surface of manganese oxide nanocatalyst are also discussed. Finally, challenges associated with platinum and carbon support platinum in improving electron and charge transfer between biocatalyst and air-cathode electrode are summarized. Keywords: Manganese oxide nanomaterials, Microbial fuel cell, Bioremediations, Batteries, Oxygen reduction reaction
url http://www.sciencedirect.com/science/article/pii/S2468217919302023
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