Synthesis of Metal Organic Frameworks (MOFs) and Their Derived Materials for Energy Storage Applications
The linkage between metal nodes and organic linkers has led to the development of new porous crystalline materials called metal–organic frameworks (MOFs). These have found significant potential applications in different areas such as gas storage and separation, chemical sensing, heterogeneous cataly...
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MDPI AG
2023-01-01
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Series: | Clean Technologies |
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Online Access: | https://www.mdpi.com/2571-8797/5/1/9 |
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author | Sunil Dutt Ashwani Kumar Shivendra Singh |
author_facet | Sunil Dutt Ashwani Kumar Shivendra Singh |
author_sort | Sunil Dutt |
collection | DOAJ |
description | The linkage between metal nodes and organic linkers has led to the development of new porous crystalline materials called metal–organic frameworks (MOFs). These have found significant potential applications in different areas such as gas storage and separation, chemical sensing, heterogeneous catalysis, biomedicine, proton conductivity, and others. Overall, MOFs are outstanding candidates for next-generation energy storage devices, and they have recently attracted the greater devotion of the scientific community worldwide. MOFs can be used to enhance the ability of a device to store energy due to their unique morphology, controllable structures, high surface area, and permanent porosity. MOFs are widely used in super capacitors (SCs), metal (Li, Na, and K) ion batteries, and lithium–sulfur batteries (LSBs) and act as a promising candidate to store energy in an environmentally friendly way. MOFs are also used as efficient materials with better recyclability, efficiency, and capacity retention. In this review, first we summarize the material design, chemical compositions, and physical structure of MOFs and afterward, we highlight the most recent development and understanding in this area, mainly focusing on various practical applications of MOFs in energy storage devices. |
first_indexed | 2024-03-11T06:44:17Z |
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language | English |
last_indexed | 2024-03-11T06:44:17Z |
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series | Clean Technologies |
spelling | doaj.art-f277a6d2e7c04fc7b451f99f3dee59ad2023-11-17T10:23:51ZengMDPI AGClean Technologies2571-87972023-01-015114016610.3390/cleantechnol5010009Synthesis of Metal Organic Frameworks (MOFs) and Their Derived Materials for Energy Storage ApplicationsSunil Dutt0Ashwani Kumar1Shivendra Singh2Department of Chemistry, Govt. PG College, Una 174303, HP, IndiaDepartment of Chemistry, Govt. College, Kullu 175101, HP, IndiaAmity School of Engineering & Technology, Amity University Gwalior, Gwalior 474005, MP, IndiaThe linkage between metal nodes and organic linkers has led to the development of new porous crystalline materials called metal–organic frameworks (MOFs). These have found significant potential applications in different areas such as gas storage and separation, chemical sensing, heterogeneous catalysis, biomedicine, proton conductivity, and others. Overall, MOFs are outstanding candidates for next-generation energy storage devices, and they have recently attracted the greater devotion of the scientific community worldwide. MOFs can be used to enhance the ability of a device to store energy due to their unique morphology, controllable structures, high surface area, and permanent porosity. MOFs are widely used in super capacitors (SCs), metal (Li, Na, and K) ion batteries, and lithium–sulfur batteries (LSBs) and act as a promising candidate to store energy in an environmentally friendly way. MOFs are also used as efficient materials with better recyclability, efficiency, and capacity retention. In this review, first we summarize the material design, chemical compositions, and physical structure of MOFs and afterward, we highlight the most recent development and understanding in this area, mainly focusing on various practical applications of MOFs in energy storage devices.https://www.mdpi.com/2571-8797/5/1/9metal–organic frameworkssynthesis and designchemical compositions and physical structuresuper capacitorsrechargeable batteriesenergy storage devices |
spellingShingle | Sunil Dutt Ashwani Kumar Shivendra Singh Synthesis of Metal Organic Frameworks (MOFs) and Their Derived Materials for Energy Storage Applications Clean Technologies metal–organic frameworks synthesis and design chemical compositions and physical structure super capacitors rechargeable batteries energy storage devices |
title | Synthesis of Metal Organic Frameworks (MOFs) and Their Derived Materials for Energy Storage Applications |
title_full | Synthesis of Metal Organic Frameworks (MOFs) and Their Derived Materials for Energy Storage Applications |
title_fullStr | Synthesis of Metal Organic Frameworks (MOFs) and Their Derived Materials for Energy Storage Applications |
title_full_unstemmed | Synthesis of Metal Organic Frameworks (MOFs) and Their Derived Materials for Energy Storage Applications |
title_short | Synthesis of Metal Organic Frameworks (MOFs) and Their Derived Materials for Energy Storage Applications |
title_sort | synthesis of metal organic frameworks mofs and their derived materials for energy storage applications |
topic | metal–organic frameworks synthesis and design chemical compositions and physical structure super capacitors rechargeable batteries energy storage devices |
url | https://www.mdpi.com/2571-8797/5/1/9 |
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