Inhibiting Fe–Al Spinel Formation on a Narrowed Mesopore-Sized MgAl2O4 Support as a Novel Catalyst for H2 Production in Chemical Looping Technology

In this paper, the structure of Al2O3 is modified with magnesium to synthesize MgAl2O4 as an oxygen carrier (OC) support. The surface properties and structural stability of the modified support are improved by the incorporation of magnesium in the structure of the support and additionally by narrowi...

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Main Authors: Ali Hafizi, Mohammad Reza Rahimpour
Format: Article
Language:English
Published: MDPI AG 2018-01-01
Series:Catalysts
Subjects:
Online Access:http://www.mdpi.com/2073-4344/8/1/27
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spelling doaj-93db12f2edd24eedb0f9c27519b530512020-11-24T22:40:14ZengMDPI AGCatalysts2073-43442018-01-01812710.3390/catal8010027catal8010027Inhibiting Fe–Al Spinel Formation on a Narrowed Mesopore-Sized MgAl2O4 Support as a Novel Catalyst for H2 Production in Chemical Looping TechnologyAli Hafizi0Mohammad Reza Rahimpour1Department of Chemical Engineering, Shiraz University, Shiraz 71345, IranDepartment of Chemical Engineering, Shiraz University, Shiraz 71345, IranIn this paper, the structure of Al2O3 is modified with magnesium to synthesize MgAl2O4 as an oxygen carrier (OC) support. The surface properties and structural stability of the modified support are improved by the incorporation of magnesium in the structure of the support and additionally by narrowing the pore size distribution (about 2.3 nm). Then, iron oxide is impregnated on both an Al2O3 support and a MgAl2O4 support as the oxygen transfer active site. The XRD results showed the formation of solely Fe2O3 on the MgAl2O4 support, while both Fe2O3 and Fe3O4 are detected in the synthesized Fe2O3-Al2O3 structure. The synthesized samples are investigated in chemical looping cycles, including CO reduction (as one of the most important side reactions of chemical looping reforming), at different temperatures (300–500 °C) and oxidation with steam at 700 °C for hydrogen production. The obtained results showed the inhibition of Fe–Al spinel formation in the structure of the Fe2O3-MgAl2O4 OC. In addition, H2 with a purity higher than 98% is achievable in oxidation of the OC with steam. In addition, the activity and crystalline change of the Fe2O3-MgAl2O4 OC is investigated after 20 reduction-oxidation cycles.http://www.mdpi.com/2073-4344/8/1/27chemical loopingoxygen carrierhydrogen productionnarrow pore size distributionFe2O3 dispersiontexture modification
collection DOAJ
language English
format Article
sources DOAJ
author Ali Hafizi
Mohammad Reza Rahimpour
spellingShingle Ali Hafizi
Mohammad Reza Rahimpour
Inhibiting Fe–Al Spinel Formation on a Narrowed Mesopore-Sized MgAl2O4 Support as a Novel Catalyst for H2 Production in Chemical Looping Technology
Catalysts
chemical looping
oxygen carrier
hydrogen production
narrow pore size distribution
Fe2O3 dispersion
texture modification
author_facet Ali Hafizi
Mohammad Reza Rahimpour
author_sort Ali Hafizi
title Inhibiting Fe–Al Spinel Formation on a Narrowed Mesopore-Sized MgAl2O4 Support as a Novel Catalyst for H2 Production in Chemical Looping Technology
title_short Inhibiting Fe–Al Spinel Formation on a Narrowed Mesopore-Sized MgAl2O4 Support as a Novel Catalyst for H2 Production in Chemical Looping Technology
title_full Inhibiting Fe–Al Spinel Formation on a Narrowed Mesopore-Sized MgAl2O4 Support as a Novel Catalyst for H2 Production in Chemical Looping Technology
title_fullStr Inhibiting Fe–Al Spinel Formation on a Narrowed Mesopore-Sized MgAl2O4 Support as a Novel Catalyst for H2 Production in Chemical Looping Technology
title_full_unstemmed Inhibiting Fe–Al Spinel Formation on a Narrowed Mesopore-Sized MgAl2O4 Support as a Novel Catalyst for H2 Production in Chemical Looping Technology
title_sort inhibiting fe–al spinel formation on a narrowed mesopore-sized mgal2o4 support as a novel catalyst for h2 production in chemical looping technology
publisher MDPI AG
series Catalysts
issn 2073-4344
publishDate 2018-01-01
description In this paper, the structure of Al2O3 is modified with magnesium to synthesize MgAl2O4 as an oxygen carrier (OC) support. The surface properties and structural stability of the modified support are improved by the incorporation of magnesium in the structure of the support and additionally by narrowing the pore size distribution (about 2.3 nm). Then, iron oxide is impregnated on both an Al2O3 support and a MgAl2O4 support as the oxygen transfer active site. The XRD results showed the formation of solely Fe2O3 on the MgAl2O4 support, while both Fe2O3 and Fe3O4 are detected in the synthesized Fe2O3-Al2O3 structure. The synthesized samples are investigated in chemical looping cycles, including CO reduction (as one of the most important side reactions of chemical looping reforming), at different temperatures (300–500 °C) and oxidation with steam at 700 °C for hydrogen production. The obtained results showed the inhibition of Fe–Al spinel formation in the structure of the Fe2O3-MgAl2O4 OC. In addition, H2 with a purity higher than 98% is achievable in oxidation of the OC with steam. In addition, the activity and crystalline change of the Fe2O3-MgAl2O4 OC is investigated after 20 reduction-oxidation cycles.
topic chemical looping
oxygen carrier
hydrogen production
narrow pore size distribution
Fe2O3 dispersion
texture modification
url http://www.mdpi.com/2073-4344/8/1/27
work_keys_str_mv AT alihafizi inhibitingfealspinelformationonanarrowedmesoporesizedmgal2o4supportasanovelcatalystforh2productioninchemicalloopingtechnology
AT mohammadrezarahimpour inhibitingfealspinelformationonanarrowedmesoporesizedmgal2o4supportasanovelcatalystforh2productioninchemicalloopingtechnology
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