Kinetic separation of CO2/CH4 mixtures with Ni-MOF-74@Al2O3 core–shell composites

Abstract A novel core–shell species for the adsorption-based separation of carbon dioxide (CO2) from methane (CH4) is introduced by hydrothermal synthesis of Ni-MOF-74 on mesoporous spherical Al2O3 carrier substrate. The material was characterized and the shell thickness determined by means of optic...

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Main Authors: D. Otter, S.-J. Ernst, L. Krätz, H.-J. Bart
Format: Article
Language:English
Published: Springer 2020-05-01
Series:SN Applied Sciences
Subjects:
Online Access:https://doi.org/10.1007/s42452-020-2885-y
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spelling doaj-1d06c8ca4f8045b18f55232ab70e29ed2021-05-16T11:15:33ZengSpringerSN Applied Sciences2523-39632523-39712020-05-012611210.1007/s42452-020-2885-yKinetic separation of CO2/CH4 mixtures with Ni-MOF-74@Al2O3 core–shell compositesD. Otter0S.-J. Ernst1L. Krätz2H.-J. Bart3Lehrstuhl für Thermische Verfahrenstechnik, Technische Universität KaiserslauternInstitut für Solare Energiesysteme (ISE), Fraunhofer-GesellschaftLehrstuhl für Thermische Verfahrenstechnik, Technische Universität KaiserslauternLehrstuhl für Thermische Verfahrenstechnik, Technische Universität KaiserslauternAbstract A novel core–shell species for the adsorption-based separation of carbon dioxide (CO2) from methane (CH4) is introduced by hydrothermal synthesis of Ni-MOF-74 on mesoporous spherical Al2O3 carrier substrate. The material was characterized and the shell thickness determined by means of optical and scanning electron microscopy as well as volumetric adsorption and fluid displacement experiments. Kinetic experiments with Ni-MOF-74@Al2O3 core–shell composites carried out at 303.15 K and at pressures up to 10 bar expose remarkably dominating uptake rates for CO2 over CH4. In the contrary Ni-MOF-74@Al2O3 appears to be unselective according to equilibrium data at the same conditions. Dynamic breakthrough experiments of binary CH4/CO2-mixtures (at 303.15 K and 5 bar) prove the prevailing effect of adsorption kinetics and the storage function of the mesoporous core. This statement is supported by a considerable boost in CO2-selectivity and capacity compared to adsorption equilibria measured on pure Ni-MOF-74 by the factor of 55.02 and up to 2.42, respectively.https://doi.org/10.1007/s42452-020-2885-yKinetic separationCore–shellComposite materialsDynamic adsorptionCO2-separationSeparation efficiency improvement
collection DOAJ
language English
format Article
sources DOAJ
author D. Otter
S.-J. Ernst
L. Krätz
H.-J. Bart
spellingShingle D. Otter
S.-J. Ernst
L. Krätz
H.-J. Bart
Kinetic separation of CO2/CH4 mixtures with Ni-MOF-74@Al2O3 core–shell composites
SN Applied Sciences
Kinetic separation
Core–shell
Composite materials
Dynamic adsorption
CO2-separation
Separation efficiency improvement
author_facet D. Otter
S.-J. Ernst
L. Krätz
H.-J. Bart
author_sort D. Otter
title Kinetic separation of CO2/CH4 mixtures with Ni-MOF-74@Al2O3 core–shell composites
title_short Kinetic separation of CO2/CH4 mixtures with Ni-MOF-74@Al2O3 core–shell composites
title_full Kinetic separation of CO2/CH4 mixtures with Ni-MOF-74@Al2O3 core–shell composites
title_fullStr Kinetic separation of CO2/CH4 mixtures with Ni-MOF-74@Al2O3 core–shell composites
title_full_unstemmed Kinetic separation of CO2/CH4 mixtures with Ni-MOF-74@Al2O3 core–shell composites
title_sort kinetic separation of co2/ch4 mixtures with ni-mof-74@al2o3 core–shell composites
publisher Springer
series SN Applied Sciences
issn 2523-3963
2523-3971
publishDate 2020-05-01
description Abstract A novel core–shell species for the adsorption-based separation of carbon dioxide (CO2) from methane (CH4) is introduced by hydrothermal synthesis of Ni-MOF-74 on mesoporous spherical Al2O3 carrier substrate. The material was characterized and the shell thickness determined by means of optical and scanning electron microscopy as well as volumetric adsorption and fluid displacement experiments. Kinetic experiments with Ni-MOF-74@Al2O3 core–shell composites carried out at 303.15 K and at pressures up to 10 bar expose remarkably dominating uptake rates for CO2 over CH4. In the contrary Ni-MOF-74@Al2O3 appears to be unselective according to equilibrium data at the same conditions. Dynamic breakthrough experiments of binary CH4/CO2-mixtures (at 303.15 K and 5 bar) prove the prevailing effect of adsorption kinetics and the storage function of the mesoporous core. This statement is supported by a considerable boost in CO2-selectivity and capacity compared to adsorption equilibria measured on pure Ni-MOF-74 by the factor of 55.02 and up to 2.42, respectively.
topic Kinetic separation
Core–shell
Composite materials
Dynamic adsorption
CO2-separation
Separation efficiency improvement
url https://doi.org/10.1007/s42452-020-2885-y
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