Metal-organic frameworks as potential catalysts for biodiesel production and biomass conversion: Mechanism and characteristics
This comprehensive assessment examines the key challenges confronting the transportation sector, a major source of greenhouse gas emissions. These issues include rising fuel costs and declining reserves. Although electric mobility is becoming more popular in light-duty transportation, heavy-duty tru...
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Published in | Industrial crops and products Vol. 211; p. 118232 |
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Main Authors | , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Elsevier B.V
01.05.2024
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Subjects | |
Online Access | Get full text |
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Abstract | This comprehensive assessment examines the key challenges confronting the transportation sector, a major source of greenhouse gas emissions. These issues include rising fuel costs and declining reserves. Although electric mobility is becoming more popular in light-duty transportation, heavy-duty trucks continue to rely heavily on diesel engines. Biofuels are the subject of extensive research as both a financially viable and environmentally conscious alternative. Biodiesel derived from animal fats and vegetable oils is widely recognized for its natural decomposition, low toxicity, low pollutant emissions, and renewable properties. Catalysts aid in the chemical transformation of biomass, an important renewable energy source around the world. Solid acid catalysts are becoming increasingly important in improving the quality of biomass. This study analyzes the ability of metal-organic frameworks (MOFs), which are hybrid nanoporous materials, to act as catalysts in biomass conversion and biodiesel production. MOFs offer exceptional performance attributes, including large surface areas and customizable pore architectures, making them highly versatile for various applications. The review analyzes the role of MOF-based catalysts in accelerating biomass conversions and biodiesel synthesis, focusing on their structural properties, benefits, and challenges. This work provides useful insights into the significance of MOFs. It emphasizes MOFs as critical catalysts for promoting green chemistry practices and advancing the paradigm of sustainable energy production.
•MOF is found as efficient catalyst for biodiesel production and biomass conversion.•Synthesis process and main properties of MOF catalysts are completely presented.•Catalytic reaction mechanisms of MOF for biofuel synthesis are scrutinized.•Challenges and perspectives of MOF catalysts are discussed in detail. |
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AbstractList | This comprehensive assessment examines the key challenges confronting the transportation sector, a major source of greenhouse gas emissions. These issues include rising fuel costs and declining reserves. Although electric mobility is becoming more popular in light-duty transportation, heavy-duty trucks continue to rely heavily on diesel engines. Biofuels are the subject of extensive research as both a financially viable and environmentally conscious alternative. Biodiesel derived from animal fats and vegetable oils is widely recognized for its natural decomposition, low toxicity, low pollutant emissions, and renewable properties. Catalysts aid in the chemical transformation of biomass, an important renewable energy source around the world. Solid acid catalysts are becoming increasingly important in improving the quality of biomass. This study analyzes the ability of metal-organic frameworks (MOFs), which are hybrid nanoporous materials, to act as catalysts in biomass conversion and biodiesel production. MOFs offer exceptional performance attributes, including large surface areas and customizable pore architectures, making them highly versatile for various applications. The review analyzes the role of MOF-based catalysts in accelerating biomass conversions and biodiesel synthesis, focusing on their structural properties, benefits, and challenges. This work provides useful insights into the significance of MOFs. It emphasizes MOFs as critical catalysts for promoting green chemistry practices and advancing the paradigm of sustainable energy production.
•MOF is found as efficient catalyst for biodiesel production and biomass conversion.•Synthesis process and main properties of MOF catalysts are completely presented.•Catalytic reaction mechanisms of MOF for biofuel synthesis are scrutinized.•Challenges and perspectives of MOF catalysts are discussed in detail. This comprehensive assessment examines the key challenges confronting the transportation sector, a major source of greenhouse gas emissions. These issues include rising fuel costs and declining reserves. Although electric mobility is becoming more popular in light-duty transportation, heavy-duty trucks continue to rely heavily on diesel engines. Biofuels are the subject of extensive research as both a financially viable and environmentally conscious alternative. Biodiesel derived from animal fats and vegetable oils is widely recognized for its natural decomposition, low toxicity, low pollutant emissions, and renewable properties. Catalysts aid in the chemical transformation of biomass, an important renewable energy source around the world. Solid acid catalysts are becoming increasingly important in improving the quality of biomass. This study analyzes the ability of metal-organic frameworks (MOFs), which are hybrid nanoporous materials, to act as catalysts in biomass conversion and biodiesel production. MOFs offer exceptional performance attributes, including large surface areas and customizable pore architectures, making them highly versatile for various applications. The review analyzes the role of MOF-based catalysts in accelerating biomass conversions and biodiesel synthesis, focusing on their structural properties, benefits, and challenges. This work provides useful insights into the significance of MOFs. It emphasizes MOFs as critical catalysts for promoting green chemistry practices and advancing the paradigm of sustainable energy production. |
ArticleNumber | 118232 |
Author | Le, Huu Son Truong, Thanh Hai Le, Thanh Tuan Tran, Viet Dung Cao, Dao Nam Le, Duc Trong Nguyen Sharma, Prabhakar Le, Huu Cuong |
Author_xml | – sequence: 1 givenname: Thanh Tuan surname: Le fullname: Le, Thanh Tuan organization: Institute of Engineering, HUTECH University, Ho Chi Minh City, Vietnam – sequence: 2 givenname: Prabhakar surname: Sharma fullname: Sharma, Prabhakar email: psharmahal@gmail.com organization: Department of Mechanical Engineering, Delhi Skill and Entrepreneurship University, Delhi 110089, India – sequence: 3 givenname: Huu Son surname: Le fullname: Le, Huu Son email: son.lh@vlu.edu.vn organization: Faculty of Automotive Engineering, School of Technology, Van Lang University, Ho Chi Minh City, Vietnam – sequence: 4 givenname: Huu Cuong surname: Le fullname: Le, Huu Cuong email: cuong.le@ut.edu.vn organization: Maritime Institute, Ho Chi Minh City University of Transport, Ho Chi Minh City, Vietnam – sequence: 5 givenname: Duc Trong Nguyen surname: Le fullname: Le, Duc Trong Nguyen email: nguyenldt@donga.edu.vn organization: Faculty of Automotive Engineering, Dong A University, Danang, Vietnam – sequence: 6 givenname: Dao Nam surname: Cao fullname: Cao, Dao Nam organization: PATET Research Group, Ho Chi Minh City University of Transport, Ho Chi Minh City, Vietnam – sequence: 7 givenname: Thanh Hai surname: Truong fullname: Truong, Thanh Hai organization: PATET Research Group, Ho Chi Minh City University of Transport, Ho Chi Minh City, Vietnam – sequence: 8 givenname: Viet Dung surname: Tran fullname: Tran, Viet Dung organization: PATET Research Group, Ho Chi Minh City University of Transport, Ho Chi Minh City, Vietnam |
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CitedBy_id | crossref_primary_10_1007_s10934_024_01713_6 crossref_primary_10_1016_j_egyr_2024_09_051 crossref_primary_10_61435_ijred_2024_60250 crossref_primary_10_1016_j_biombioe_2025_107662 crossref_primary_10_1021_acssusresmgt_4c00190 |
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Title | Metal-organic frameworks as potential catalysts for biodiesel production and biomass conversion: Mechanism and characteristics |
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