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Advanced Chemical Looping Materials for CO(2) Utilization: A Review

Combining chemical looping with a traditional fuel conversion process yields a promising technology for low-CO(2)-emission energy production. Bridged by the cyclic transformation of a looping material (CO(2) carrier or oxygen carrier), a chemical looping process is divided into two spatially or temp...

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Autores principales: Hu, Jiawei, Galvita, Vladimir V., Poelman, Hilde, Marin, Guy B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6073161/
https://www.ncbi.nlm.nih.gov/pubmed/29996567
http://dx.doi.org/10.3390/ma11071187
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author Hu, Jiawei
Galvita, Vladimir V.
Poelman, Hilde
Marin, Guy B.
author_facet Hu, Jiawei
Galvita, Vladimir V.
Poelman, Hilde
Marin, Guy B.
author_sort Hu, Jiawei
collection PubMed
description Combining chemical looping with a traditional fuel conversion process yields a promising technology for low-CO(2)-emission energy production. Bridged by the cyclic transformation of a looping material (CO(2) carrier or oxygen carrier), a chemical looping process is divided into two spatially or temporally separated half-cycles. Firstly, the oxygen carrier material is reduced by fuel, producing power or chemicals. Then, the material is regenerated by an oxidizer. In chemical looping combustion, a separation-ready CO(2) stream is produced, which significantly improves the CO(2) capture efficiency. In chemical looping reforming, CO(2) can be used as an oxidizer, resulting in a novel approach for efficient CO(2) utilization through reduction to CO. Recently, the novel process of catalyst-assisted chemical looping was proposed, aiming at maximized CO(2) utilization via the achievement of deep reduction of the oxygen carrier in the first half-cycle. It makes use of a bifunctional looping material that combines both catalytic function for efficient fuel conversion and oxygen storage function for redox cycling. For all of these chemical looping technologies, the choice of looping materials is crucial for their industrial application. Therefore, current research is focused on the development of a suitable looping material, which is required to have high redox activity and stability, and good economic and environmental performance. In this review, a series of commonly used metal oxide-based materials are firstly compared as looping material from an industrial-application perspective. The recent advances in the enhancement of the activity and stability of looping materials are discussed. The focus then proceeds to new findings in the development of the bifunctional looping materials employed in the emerging catalyst-assisted chemical looping technology. Among these, the design of core-shell structured Ni-Fe bifunctional nanomaterials shows great potential for catalyst-assisted chemical looping.
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spelling pubmed-60731612018-08-13 Advanced Chemical Looping Materials for CO(2) Utilization: A Review Hu, Jiawei Galvita, Vladimir V. Poelman, Hilde Marin, Guy B. Materials (Basel) Review Combining chemical looping with a traditional fuel conversion process yields a promising technology for low-CO(2)-emission energy production. Bridged by the cyclic transformation of a looping material (CO(2) carrier or oxygen carrier), a chemical looping process is divided into two spatially or temporally separated half-cycles. Firstly, the oxygen carrier material is reduced by fuel, producing power or chemicals. Then, the material is regenerated by an oxidizer. In chemical looping combustion, a separation-ready CO(2) stream is produced, which significantly improves the CO(2) capture efficiency. In chemical looping reforming, CO(2) can be used as an oxidizer, resulting in a novel approach for efficient CO(2) utilization through reduction to CO. Recently, the novel process of catalyst-assisted chemical looping was proposed, aiming at maximized CO(2) utilization via the achievement of deep reduction of the oxygen carrier in the first half-cycle. It makes use of a bifunctional looping material that combines both catalytic function for efficient fuel conversion and oxygen storage function for redox cycling. For all of these chemical looping technologies, the choice of looping materials is crucial for their industrial application. Therefore, current research is focused on the development of a suitable looping material, which is required to have high redox activity and stability, and good economic and environmental performance. In this review, a series of commonly used metal oxide-based materials are firstly compared as looping material from an industrial-application perspective. The recent advances in the enhancement of the activity and stability of looping materials are discussed. The focus then proceeds to new findings in the development of the bifunctional looping materials employed in the emerging catalyst-assisted chemical looping technology. Among these, the design of core-shell structured Ni-Fe bifunctional nanomaterials shows great potential for catalyst-assisted chemical looping. MDPI 2018-07-10 /pmc/articles/PMC6073161/ /pubmed/29996567 http://dx.doi.org/10.3390/ma11071187 Text en © 2018 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 Review
Hu, Jiawei
Galvita, Vladimir V.
Poelman, Hilde
Marin, Guy B.
Advanced Chemical Looping Materials for CO(2) Utilization: A Review
title Advanced Chemical Looping Materials for CO(2) Utilization: A Review
title_full Advanced Chemical Looping Materials for CO(2) Utilization: A Review
title_fullStr Advanced Chemical Looping Materials for CO(2) Utilization: A Review
title_full_unstemmed Advanced Chemical Looping Materials for CO(2) Utilization: A Review
title_short Advanced Chemical Looping Materials for CO(2) Utilization: A Review
title_sort advanced chemical looping materials for co(2) utilization: a review
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6073161/
https://www.ncbi.nlm.nih.gov/pubmed/29996567
http://dx.doi.org/10.3390/ma11071187
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