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Graphene-Based Metal–Organic Framework Hybrids for Applications in Catalysis, Environmental, and Energy Technologies

[Image: see text] Current energy and environmental challenges demand the development and design of multifunctional porous materials with tunable properties for catalysis, water purification, and energy conversion and storage. Because of their amenability to de novo reticular chemistry, metal–organic...

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Autores principales: Jayaramulu, Kolleboyina, Mukherjee, Soumya, Morales, Dulce M., Dubal, Deepak P., Nanjundan, Ashok Kumar, Schneemann, Andreas, Masa, Justus, Kment, Stepan, Schuhmann, Wolfgang, Otyepka, Michal, Zbořil, Radek, Fischer, Roland A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9801388/
https://www.ncbi.nlm.nih.gov/pubmed/36318747
http://dx.doi.org/10.1021/acs.chemrev.2c00270
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author Jayaramulu, Kolleboyina
Mukherjee, Soumya
Morales, Dulce M.
Dubal, Deepak P.
Nanjundan, Ashok Kumar
Schneemann, Andreas
Masa, Justus
Kment, Stepan
Schuhmann, Wolfgang
Otyepka, Michal
Zbořil, Radek
Fischer, Roland A.
author_facet Jayaramulu, Kolleboyina
Mukherjee, Soumya
Morales, Dulce M.
Dubal, Deepak P.
Nanjundan, Ashok Kumar
Schneemann, Andreas
Masa, Justus
Kment, Stepan
Schuhmann, Wolfgang
Otyepka, Michal
Zbořil, Radek
Fischer, Roland A.
author_sort Jayaramulu, Kolleboyina
collection PubMed
description [Image: see text] Current energy and environmental challenges demand the development and design of multifunctional porous materials with tunable properties for catalysis, water purification, and energy conversion and storage. Because of their amenability to de novo reticular chemistry, metal–organic frameworks (MOFs) have become key materials in this area. However, their usefulness is often limited by low chemical stability, conductivity and inappropriate pore sizes. Conductive two-dimensional (2D) materials with robust structural skeletons and/or functionalized surfaces can form stabilizing interactions with MOF components, enabling the fabrication of MOF nanocomposites with tunable pore characteristics. Graphene and its functional derivatives are the largest class of 2D materials and possess remarkable compositional versatility, structural diversity, and controllable surface chemistry. Here, we critically review current knowledge concerning the growth, structure, and properties of graphene derivatives, MOFs, and their graphene@MOF composites as well as the associated structure–property–performance relationships. Synthetic strategies for preparing graphene@MOF composites and tuning their properties are also comprehensively reviewed together with their applications in gas storage/separation, water purification, catalysis (organo-, electro-, and photocatalysis), and electrochemical energy storage and conversion. Current challenges in the development of graphene@MOF hybrids and their practical applications are addressed, revealing areas for future investigation. We hope that this review will inspire further exploration of new graphene@MOF hybrids for energy, electronic, biomedical, and photocatalysis applications as well as studies on previously unreported properties of known hybrids to reveal potential “diamonds in the rough”.
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spelling pubmed-98013882022-12-31 Graphene-Based Metal–Organic Framework Hybrids for Applications in Catalysis, Environmental, and Energy Technologies Jayaramulu, Kolleboyina Mukherjee, Soumya Morales, Dulce M. Dubal, Deepak P. Nanjundan, Ashok Kumar Schneemann, Andreas Masa, Justus Kment, Stepan Schuhmann, Wolfgang Otyepka, Michal Zbořil, Radek Fischer, Roland A. Chem Rev [Image: see text] Current energy and environmental challenges demand the development and design of multifunctional porous materials with tunable properties for catalysis, water purification, and energy conversion and storage. Because of their amenability to de novo reticular chemistry, metal–organic frameworks (MOFs) have become key materials in this area. However, their usefulness is often limited by low chemical stability, conductivity and inappropriate pore sizes. Conductive two-dimensional (2D) materials with robust structural skeletons and/or functionalized surfaces can form stabilizing interactions with MOF components, enabling the fabrication of MOF nanocomposites with tunable pore characteristics. Graphene and its functional derivatives are the largest class of 2D materials and possess remarkable compositional versatility, structural diversity, and controllable surface chemistry. Here, we critically review current knowledge concerning the growth, structure, and properties of graphene derivatives, MOFs, and their graphene@MOF composites as well as the associated structure–property–performance relationships. Synthetic strategies for preparing graphene@MOF composites and tuning their properties are also comprehensively reviewed together with their applications in gas storage/separation, water purification, catalysis (organo-, electro-, and photocatalysis), and electrochemical energy storage and conversion. Current challenges in the development of graphene@MOF hybrids and their practical applications are addressed, revealing areas for future investigation. We hope that this review will inspire further exploration of new graphene@MOF hybrids for energy, electronic, biomedical, and photocatalysis applications as well as studies on previously unreported properties of known hybrids to reveal potential “diamonds in the rough”. American Chemical Society 2022-11-01 2022-12-28 /pmc/articles/PMC9801388/ /pubmed/36318747 http://dx.doi.org/10.1021/acs.chemrev.2c00270 Text en © 2022 American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Jayaramulu, Kolleboyina
Mukherjee, Soumya
Morales, Dulce M.
Dubal, Deepak P.
Nanjundan, Ashok Kumar
Schneemann, Andreas
Masa, Justus
Kment, Stepan
Schuhmann, Wolfgang
Otyepka, Michal
Zbořil, Radek
Fischer, Roland A.
Graphene-Based Metal–Organic Framework Hybrids for Applications in Catalysis, Environmental, and Energy Technologies
title Graphene-Based Metal–Organic Framework Hybrids for Applications in Catalysis, Environmental, and Energy Technologies
title_full Graphene-Based Metal–Organic Framework Hybrids for Applications in Catalysis, Environmental, and Energy Technologies
title_fullStr Graphene-Based Metal–Organic Framework Hybrids for Applications in Catalysis, Environmental, and Energy Technologies
title_full_unstemmed Graphene-Based Metal–Organic Framework Hybrids for Applications in Catalysis, Environmental, and Energy Technologies
title_short Graphene-Based Metal–Organic Framework Hybrids for Applications in Catalysis, Environmental, and Energy Technologies
title_sort graphene-based metal–organic framework hybrids for applications in catalysis, environmental, and energy technologies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9801388/
https://www.ncbi.nlm.nih.gov/pubmed/36318747
http://dx.doi.org/10.1021/acs.chemrev.2c00270
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