Low Dimensional Carbon-Based Catalysts for Efficient Photocatalytic and Photo/Electrochemical Water Splitting Reactions
A universal increase in energy consumption and the dependency on fossil fuels have resulted in increasing severity of global warming, thus necessitating the search of new and environment-friendly energy sources. Hydrogen is as one of the energy sources that can resolve the abovementioned problems. W...
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doaj-e010c9c83c694b2db7647e8544e48b0d2020-11-25T00:11:40ZengMDPI AGMaterials1996-19442019-12-0113111410.3390/ma13010114ma13010114Low Dimensional Carbon-Based Catalysts for Efficient Photocatalytic and Photo/Electrochemical Water Splitting ReactionsYoongu Lim0Dong-Kyu Lee1Seong Min Kim2Woosung Park3Sung Yong Cho4Uk Sim5Department of Materials Science & Engineering, Chonnam National University, Gwangju 61186, KoreaDepartment of Materials Science & Engineering, Chonnam National University, Gwangju 61186, KoreaDepartment of Bioengineering, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, JapanDivision of Mechanical Systems Engineering, Institute of Advanced Materials and Systems, Sookmyung Women’s University, Seoul 04310, KoreaDepartment of Environment and Energy Engineering, Chonnam National University, Gwangju 61186, KoreaDepartment of Materials Science & Engineering, Chonnam National University, Gwangju 61186, KoreaA universal increase in energy consumption and the dependency on fossil fuels have resulted in increasing severity of global warming, thus necessitating the search of new and environment-friendly energy sources. Hydrogen is as one of the energy sources that can resolve the abovementioned problems. Water splitting promotes ecofriendly hydrogen production without the formation of any greenhouse gas. The most common process for hydrogen production is electrolysis, wherein water molecules are separated into hydrogen and oxygen through electrochemical reactions. Solar-energy-induced chemical reactions, including photocatalysis and photoelectrochemistry, have gained considerable attention because of the simplicity of their procedures and use of solar radiation as the energy source. To improve performance of water splitting reactions, the use of catalysts has been widely investigated. For example, the novel-metal catalysts possessing extremely high catalytic properties for various reactions have been considered. However, due to the rarity and high costs of the novel-metal materials, the catalysts were considered unsuitable for universal use. Although other transition-metal-based materials have also been investigated, carbon-based materials, which are obtained from one of the most common elements on Earth, have potential as low-cost, nontoxic, high-performance catalysts for both photo and electrochemical reactions. Because abundancy, simplicity of synthesis routes, and excellent performance are the important factors for catalysts, easy optimization and many variations are possible in carbon-materials, making them more attractive. In particular, low-dimensional carbon materials, such as graphene and graphitic carbon nitride, exhibit excellent performance because of their unique electrical, mechanical, and catalytic properties. In this mini-review, we will discuss the performance of low-dimensional carbon-based materials for water splitting reactions.https://www.mdpi.com/1996-1944/13/1/114water splittingelectrochemistryphotoelectrochemistryphotocatalysiscarbon-based materials |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yoongu Lim Dong-Kyu Lee Seong Min Kim Woosung Park Sung Yong Cho Uk Sim |
spellingShingle |
Yoongu Lim Dong-Kyu Lee Seong Min Kim Woosung Park Sung Yong Cho Uk Sim Low Dimensional Carbon-Based Catalysts for Efficient Photocatalytic and Photo/Electrochemical Water Splitting Reactions Materials water splitting electrochemistry photoelectrochemistry photocatalysis carbon-based materials |
author_facet |
Yoongu Lim Dong-Kyu Lee Seong Min Kim Woosung Park Sung Yong Cho Uk Sim |
author_sort |
Yoongu Lim |
title |
Low Dimensional Carbon-Based Catalysts for Efficient Photocatalytic and Photo/Electrochemical Water Splitting Reactions |
title_short |
Low Dimensional Carbon-Based Catalysts for Efficient Photocatalytic and Photo/Electrochemical Water Splitting Reactions |
title_full |
Low Dimensional Carbon-Based Catalysts for Efficient Photocatalytic and Photo/Electrochemical Water Splitting Reactions |
title_fullStr |
Low Dimensional Carbon-Based Catalysts for Efficient Photocatalytic and Photo/Electrochemical Water Splitting Reactions |
title_full_unstemmed |
Low Dimensional Carbon-Based Catalysts for Efficient Photocatalytic and Photo/Electrochemical Water Splitting Reactions |
title_sort |
low dimensional carbon-based catalysts for efficient photocatalytic and photo/electrochemical water splitting reactions |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2019-12-01 |
description |
A universal increase in energy consumption and the dependency on fossil fuels have resulted in increasing severity of global warming, thus necessitating the search of new and environment-friendly energy sources. Hydrogen is as one of the energy sources that can resolve the abovementioned problems. Water splitting promotes ecofriendly hydrogen production without the formation of any greenhouse gas. The most common process for hydrogen production is electrolysis, wherein water molecules are separated into hydrogen and oxygen through electrochemical reactions. Solar-energy-induced chemical reactions, including photocatalysis and photoelectrochemistry, have gained considerable attention because of the simplicity of their procedures and use of solar radiation as the energy source. To improve performance of water splitting reactions, the use of catalysts has been widely investigated. For example, the novel-metal catalysts possessing extremely high catalytic properties for various reactions have been considered. However, due to the rarity and high costs of the novel-metal materials, the catalysts were considered unsuitable for universal use. Although other transition-metal-based materials have also been investigated, carbon-based materials, which are obtained from one of the most common elements on Earth, have potential as low-cost, nontoxic, high-performance catalysts for both photo and electrochemical reactions. Because abundancy, simplicity of synthesis routes, and excellent performance are the important factors for catalysts, easy optimization and many variations are possible in carbon-materials, making them more attractive. In particular, low-dimensional carbon materials, such as graphene and graphitic carbon nitride, exhibit excellent performance because of their unique electrical, mechanical, and catalytic properties. In this mini-review, we will discuss the performance of low-dimensional carbon-based materials for water splitting reactions. |
topic |
water splitting electrochemistry photoelectrochemistry photocatalysis carbon-based materials |
url |
https://www.mdpi.com/1996-1944/13/1/114 |
work_keys_str_mv |
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