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Porous Single-Crystalline Monolith to Enhance Catalytic Activity and Stability

Engineering the catalytic activity and stability of materials would require the identification of the structural features that can tailor active sites at surfaces. Porous single crystals combine the ordered lattice structures and disordered interconnected pores, and they would therefore provide the...

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Autores principales: Yu, Xiaoyan, Cheng, Fangyuan, Duan, Xiuyun, Xie, Kui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9297723/
https://www.ncbi.nlm.nih.gov/pubmed/35928301
http://dx.doi.org/10.34133/2022/9861518
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author Yu, Xiaoyan
Cheng, Fangyuan
Duan, Xiuyun
Xie, Kui
author_facet Yu, Xiaoyan
Cheng, Fangyuan
Duan, Xiuyun
Xie, Kui
author_sort Yu, Xiaoyan
collection PubMed
description Engineering the catalytic activity and stability of materials would require the identification of the structural features that can tailor active sites at surfaces. Porous single crystals combine the ordered lattice structures and disordered interconnected pores, and they would therefore provide the advantages of precise structure features to identify and engineer the active sites at surfaces. Herein, we fabricate porous single-crystalline vanadium nitride (VN) at centimeter scale and further dope Fe (Fe(0.1)V(0.9)N) and Co (Co(0.1)V(0.9)N) in lattice to engineer the active sites at surface. We demonstrate that the active surface is composed of unsaturated coordination of V-N, Fe-N, and Co-N structures which lead to the generation of high-density active sites at the porous single-crystalline monolith surface. The interconnected pores aid the pore-enhanced fluxion to facilitate species diffusion in the porous architectures. In the nonoxidative dehydrogenation of ethane to ethylene, we demonstrate the outstanding performance with ethane conversion of 36% and ethylene selectivity of 99% at 660°C. Remarkably stability as a result of their single-crystalline structure, the monoliths achieve the outstanding performance without degradation being observed even after 200 hours of a continuous operation in a monolithic reactor. This work not only demonstrates the effective structural engineering to simultaneously enhance the stability and overall performance for practically useful catalytic materials but also provide a new route for the element doping of porous single crystals at large scale for the potential application in other fields.
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spelling pubmed-92977232022-08-03 Porous Single-Crystalline Monolith to Enhance Catalytic Activity and Stability Yu, Xiaoyan Cheng, Fangyuan Duan, Xiuyun Xie, Kui Research (Wash D C) Research Article Engineering the catalytic activity and stability of materials would require the identification of the structural features that can tailor active sites at surfaces. Porous single crystals combine the ordered lattice structures and disordered interconnected pores, and they would therefore provide the advantages of precise structure features to identify and engineer the active sites at surfaces. Herein, we fabricate porous single-crystalline vanadium nitride (VN) at centimeter scale and further dope Fe (Fe(0.1)V(0.9)N) and Co (Co(0.1)V(0.9)N) in lattice to engineer the active sites at surface. We demonstrate that the active surface is composed of unsaturated coordination of V-N, Fe-N, and Co-N structures which lead to the generation of high-density active sites at the porous single-crystalline monolith surface. The interconnected pores aid the pore-enhanced fluxion to facilitate species diffusion in the porous architectures. In the nonoxidative dehydrogenation of ethane to ethylene, we demonstrate the outstanding performance with ethane conversion of 36% and ethylene selectivity of 99% at 660°C. Remarkably stability as a result of their single-crystalline structure, the monoliths achieve the outstanding performance without degradation being observed even after 200 hours of a continuous operation in a monolithic reactor. This work not only demonstrates the effective structural engineering to simultaneously enhance the stability and overall performance for practically useful catalytic materials but also provide a new route for the element doping of porous single crystals at large scale for the potential application in other fields. AAAS 2022-07-05 /pmc/articles/PMC9297723/ /pubmed/35928301 http://dx.doi.org/10.34133/2022/9861518 Text en Copyright © 2022 Xiaoyan Yu et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Yu, Xiaoyan
Cheng, Fangyuan
Duan, Xiuyun
Xie, Kui
Porous Single-Crystalline Monolith to Enhance Catalytic Activity and Stability
title Porous Single-Crystalline Monolith to Enhance Catalytic Activity and Stability
title_full Porous Single-Crystalline Monolith to Enhance Catalytic Activity and Stability
title_fullStr Porous Single-Crystalline Monolith to Enhance Catalytic Activity and Stability
title_full_unstemmed Porous Single-Crystalline Monolith to Enhance Catalytic Activity and Stability
title_short Porous Single-Crystalline Monolith to Enhance Catalytic Activity and Stability
title_sort porous single-crystalline monolith to enhance catalytic activity and stability
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9297723/
https://www.ncbi.nlm.nih.gov/pubmed/35928301
http://dx.doi.org/10.34133/2022/9861518
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AT duanxiuyun poroussinglecrystallinemonolithtoenhancecatalyticactivityandstability
AT xiekui poroussinglecrystallinemonolithtoenhancecatalyticactivityandstability