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Multi-Metals CaMgAl Metal-Organic Framework as CaO-based Sorbent to Achieve Highly CO(2) Capture Capacity and Cyclic Performance

In this study, Ca-based multi-metals metal-organic framework (CaMgAl-MOF) has been designed as precursor material for carbon dioxide (CO(2)) capture to enhance the CO(2) capture capacity and stability during multiple carbonation-calcination cycles. The CaMgAl-MOFs were constructed from self-assembly...

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Autores principales: Wu, Szu-Chen, Chang, Po-Hsueh, Lin, Chieh-Yen, Peng, Cheng-Hsiung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7287868/
https://www.ncbi.nlm.nih.gov/pubmed/32408628
http://dx.doi.org/10.3390/ma13102220
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author Wu, Szu-Chen
Chang, Po-Hsueh
Lin, Chieh-Yen
Peng, Cheng-Hsiung
author_facet Wu, Szu-Chen
Chang, Po-Hsueh
Lin, Chieh-Yen
Peng, Cheng-Hsiung
author_sort Wu, Szu-Chen
collection PubMed
description In this study, Ca-based multi-metals metal-organic framework (CaMgAl-MOF) has been designed as precursor material for carbon dioxide (CO(2)) capture to enhance the CO(2) capture capacity and stability during multiple carbonation-calcination cycles. The CaMgAl-MOFs were constructed from self-assembly of metal ions and organic ligands through hydrothermal process to make metal ions uniformly distributed through the whole structure. Upon heat treatment at 600 °C, the Ca-based multi-metals CaMgAl-MOF would gradually transform to CaO and MgO nanoparticles along with the amorphous aluminum oxide distributed in the CaO matrix. XRD, Fourier transform infrared (FTIR), and SEM were used to identify the structure and characterize the morphology. The CO(2) capture capacity and multiple carbonation-calcination cyclic tests of calcined Ca-based metal-organic framework (MOF) (attached with O and indicated as Ca-MOF-O) were performed by thermal gravimetric analysis (TGA). The single metal component calcined Ca-MOF sorbent have the highest CO(2) capture capacity up to 72 wt.%, but a lower stability of 61% due to severe particle aggregation. In contrast, a higher Ca-rich MOF oxide sorbent with tailoring the Mg/Al ratios, Ca(0.97)Mg(0.025)Al(0.005)-MOF-O, showed the best performance, not only having the high stability of ~97%, but also maintaining the highest capacity of 71 wt.%. The concept of using Ca-based MOF materials combined with mixed-metal ions for CO(2) capture showed a potential route for achieving efficient multiple carbonation-calcination CO(2) cycles.
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spelling pubmed-72878682020-06-15 Multi-Metals CaMgAl Metal-Organic Framework as CaO-based Sorbent to Achieve Highly CO(2) Capture Capacity and Cyclic Performance Wu, Szu-Chen Chang, Po-Hsueh Lin, Chieh-Yen Peng, Cheng-Hsiung Materials (Basel) Article In this study, Ca-based multi-metals metal-organic framework (CaMgAl-MOF) has been designed as precursor material for carbon dioxide (CO(2)) capture to enhance the CO(2) capture capacity and stability during multiple carbonation-calcination cycles. The CaMgAl-MOFs were constructed from self-assembly of metal ions and organic ligands through hydrothermal process to make metal ions uniformly distributed through the whole structure. Upon heat treatment at 600 °C, the Ca-based multi-metals CaMgAl-MOF would gradually transform to CaO and MgO nanoparticles along with the amorphous aluminum oxide distributed in the CaO matrix. XRD, Fourier transform infrared (FTIR), and SEM were used to identify the structure and characterize the morphology. The CO(2) capture capacity and multiple carbonation-calcination cyclic tests of calcined Ca-based metal-organic framework (MOF) (attached with O and indicated as Ca-MOF-O) were performed by thermal gravimetric analysis (TGA). The single metal component calcined Ca-MOF sorbent have the highest CO(2) capture capacity up to 72 wt.%, but a lower stability of 61% due to severe particle aggregation. In contrast, a higher Ca-rich MOF oxide sorbent with tailoring the Mg/Al ratios, Ca(0.97)Mg(0.025)Al(0.005)-MOF-O, showed the best performance, not only having the high stability of ~97%, but also maintaining the highest capacity of 71 wt.%. The concept of using Ca-based MOF materials combined with mixed-metal ions for CO(2) capture showed a potential route for achieving efficient multiple carbonation-calcination CO(2) cycles. MDPI 2020-05-12 /pmc/articles/PMC7287868/ /pubmed/32408628 http://dx.doi.org/10.3390/ma13102220 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wu, Szu-Chen
Chang, Po-Hsueh
Lin, Chieh-Yen
Peng, Cheng-Hsiung
Multi-Metals CaMgAl Metal-Organic Framework as CaO-based Sorbent to Achieve Highly CO(2) Capture Capacity and Cyclic Performance
title Multi-Metals CaMgAl Metal-Organic Framework as CaO-based Sorbent to Achieve Highly CO(2) Capture Capacity and Cyclic Performance
title_full Multi-Metals CaMgAl Metal-Organic Framework as CaO-based Sorbent to Achieve Highly CO(2) Capture Capacity and Cyclic Performance
title_fullStr Multi-Metals CaMgAl Metal-Organic Framework as CaO-based Sorbent to Achieve Highly CO(2) Capture Capacity and Cyclic Performance
title_full_unstemmed Multi-Metals CaMgAl Metal-Organic Framework as CaO-based Sorbent to Achieve Highly CO(2) Capture Capacity and Cyclic Performance
title_short Multi-Metals CaMgAl Metal-Organic Framework as CaO-based Sorbent to Achieve Highly CO(2) Capture Capacity and Cyclic Performance
title_sort multi-metals camgal metal-organic framework as cao-based sorbent to achieve highly co(2) capture capacity and cyclic performance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7287868/
https://www.ncbi.nlm.nih.gov/pubmed/32408628
http://dx.doi.org/10.3390/ma13102220
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