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Flexibility of Metal-Organic Framework Tunable by Crystal Size at the Micrometer to Submillimeter Scale for Efficient Xylene Isomer Separation

Understanding, controlling, and utilizing the flexibility of adsorbents are of great importance and difficulty. Analogous with conventional solid materials, downsizing to the nanoscale is emerging as a possible strategy for controlling the flexibility of porous coordination polymers (or metal-organi...

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Autores principales: Yang, Xiao, Zhou, Hao-Long, He, Chun-Ting, Mo, Zong-Wen, Ye, Jia-Wen, Chen, Xiao-Ming, Zhang, Jie-Peng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6946284/
https://www.ncbi.nlm.nih.gov/pubmed/31922147
http://dx.doi.org/10.34133/2019/9463719
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author Yang, Xiao
Zhou, Hao-Long
He, Chun-Ting
Mo, Zong-Wen
Ye, Jia-Wen
Chen, Xiao-Ming
Zhang, Jie-Peng
author_facet Yang, Xiao
Zhou, Hao-Long
He, Chun-Ting
Mo, Zong-Wen
Ye, Jia-Wen
Chen, Xiao-Ming
Zhang, Jie-Peng
author_sort Yang, Xiao
collection PubMed
description Understanding, controlling, and utilizing the flexibility of adsorbents are of great importance and difficulty. Analogous with conventional solid materials, downsizing to the nanoscale is emerging as a possible strategy for controlling the flexibility of porous coordination polymers (or metal-organic frameworks). We report a unique flexibility controllable by crystal size at the micrometer to submillimeter scale. Template removal transforms [Cu(2)(pypz)(2)]·0.5p-xylene (MAF-36, Hpypz = 4-(1H-pyrazol-4-yl)pyridine) with one-dimensional channels to α-[Cu(2)(pypz)(2)] with discrete small cavities, and further heating gives a nonporous isomer β-[Cu(2)(pypz)(2)]. Both isomers can adsorb p-xylene to give [Cu(2)(pypz)(2)]·0.5p-xylene, meaning the coexistence of guest-driven flexibility and shape-memory behavior. The phase transition temperature from α-[Cu(2)(pypz)(2)] to β-[Cu(2)(pypz)(2)] decreased from ~270°C to ~150°C by increasing the crystal size from the micrometer to the submillimeter scale, ca. 2-3 orders larger than those of other size-dependent behaviors. Single-crystal X-ray diffraction showed coordination bond reconstitution and chirality inversion mechanisms for the phase transition, which provides a sufficiently high energy barrier to stabilize the metastable phase without the need of downsizing to the nanoscale. By virtue of the crystalline molecular imprinting and gate-opening effects, α-[Cu(2)(pypz)(2)] and β-[Cu(2)(pypz)(2)] show unprecedentedly high p-xylene selectivities of 16 and 51, respectively, as well as ultrafast adsorption kinetics (<2 minutes), for xylene isomers.
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spelling pubmed-69462842020-01-09 Flexibility of Metal-Organic Framework Tunable by Crystal Size at the Micrometer to Submillimeter Scale for Efficient Xylene Isomer Separation Yang, Xiao Zhou, Hao-Long He, Chun-Ting Mo, Zong-Wen Ye, Jia-Wen Chen, Xiao-Ming Zhang, Jie-Peng Research (Wash D C) Research Article Understanding, controlling, and utilizing the flexibility of adsorbents are of great importance and difficulty. Analogous with conventional solid materials, downsizing to the nanoscale is emerging as a possible strategy for controlling the flexibility of porous coordination polymers (or metal-organic frameworks). We report a unique flexibility controllable by crystal size at the micrometer to submillimeter scale. Template removal transforms [Cu(2)(pypz)(2)]·0.5p-xylene (MAF-36, Hpypz = 4-(1H-pyrazol-4-yl)pyridine) with one-dimensional channels to α-[Cu(2)(pypz)(2)] with discrete small cavities, and further heating gives a nonporous isomer β-[Cu(2)(pypz)(2)]. Both isomers can adsorb p-xylene to give [Cu(2)(pypz)(2)]·0.5p-xylene, meaning the coexistence of guest-driven flexibility and shape-memory behavior. The phase transition temperature from α-[Cu(2)(pypz)(2)] to β-[Cu(2)(pypz)(2)] decreased from ~270°C to ~150°C by increasing the crystal size from the micrometer to the submillimeter scale, ca. 2-3 orders larger than those of other size-dependent behaviors. Single-crystal X-ray diffraction showed coordination bond reconstitution and chirality inversion mechanisms for the phase transition, which provides a sufficiently high energy barrier to stabilize the metastable phase without the need of downsizing to the nanoscale. By virtue of the crystalline molecular imprinting and gate-opening effects, α-[Cu(2)(pypz)(2)] and β-[Cu(2)(pypz)(2)] show unprecedentedly high p-xylene selectivities of 16 and 51, respectively, as well as ultrafast adsorption kinetics (<2 minutes), for xylene isomers. AAAS 2019-10-17 /pmc/articles/PMC6946284/ /pubmed/31922147 http://dx.doi.org/10.34133/2019/9463719 Text en Copyright © 2019 Xiao Yang et al. http://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
Yang, Xiao
Zhou, Hao-Long
He, Chun-Ting
Mo, Zong-Wen
Ye, Jia-Wen
Chen, Xiao-Ming
Zhang, Jie-Peng
Flexibility of Metal-Organic Framework Tunable by Crystal Size at the Micrometer to Submillimeter Scale for Efficient Xylene Isomer Separation
title Flexibility of Metal-Organic Framework Tunable by Crystal Size at the Micrometer to Submillimeter Scale for Efficient Xylene Isomer Separation
title_full Flexibility of Metal-Organic Framework Tunable by Crystal Size at the Micrometer to Submillimeter Scale for Efficient Xylene Isomer Separation
title_fullStr Flexibility of Metal-Organic Framework Tunable by Crystal Size at the Micrometer to Submillimeter Scale for Efficient Xylene Isomer Separation
title_full_unstemmed Flexibility of Metal-Organic Framework Tunable by Crystal Size at the Micrometer to Submillimeter Scale for Efficient Xylene Isomer Separation
title_short Flexibility of Metal-Organic Framework Tunable by Crystal Size at the Micrometer to Submillimeter Scale for Efficient Xylene Isomer Separation
title_sort flexibility of metal-organic framework tunable by crystal size at the micrometer to submillimeter scale for efficient xylene isomer separation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6946284/
https://www.ncbi.nlm.nih.gov/pubmed/31922147
http://dx.doi.org/10.34133/2019/9463719
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