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Water sensitivity of heteroepitaxial Cu-MOF films: dissolution and re-crystallization of 3D-oriented MOF superstructures

3D-oriented metal–organic framework (MOF) films and patterns have recently emerged as promising platforms for sensing and photonic applications. These oriented polycrystalline materials are typically prepared by heteroepitaxial growth from aligned inorganic nanostructures and display anisotropic fun...

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Autores principales: Brandner, Lea A., Linares-Moreau, Mercedes, Zhou, Guojun, Amenitsch, Heinz, Dal Zilio, Simone, Huang, Zhehao, Doonan, Christian, Falcaro, Paolo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10631222/
https://www.ncbi.nlm.nih.gov/pubmed/37969597
http://dx.doi.org/10.1039/d3sc04135b
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author Brandner, Lea A.
Linares-Moreau, Mercedes
Zhou, Guojun
Amenitsch, Heinz
Dal Zilio, Simone
Huang, Zhehao
Doonan, Christian
Falcaro, Paolo
author_facet Brandner, Lea A.
Linares-Moreau, Mercedes
Zhou, Guojun
Amenitsch, Heinz
Dal Zilio, Simone
Huang, Zhehao
Doonan, Christian
Falcaro, Paolo
author_sort Brandner, Lea A.
collection PubMed
description 3D-oriented metal–organic framework (MOF) films and patterns have recently emerged as promising platforms for sensing and photonic applications. These oriented polycrystalline materials are typically prepared by heteroepitaxial growth from aligned inorganic nanostructures and display anisotropic functional properties, such as guest molecule alignment and polarized fluorescence. However, to identify suitable conditions for the integration of these 3D-oriented MOF superstructures into functional devices, the effect of water (gaseous and liquid) on different frameworks should be determined. We note that the hydrolytic stability of these heteroepitaxially grown MOF films is currently unexplored. In this work, we present an in-depth analysis of the structural evolution of aligned 2D and 3D Cu-based MOFs grown from Cu(OH)(2) coatings. Specifically, 3D-oriented Cu(2)L(2) and Cu(2)L(2)DABCO films (L = 1,4-benzenedicarboxylate, BDC; biphenyl-4,4-dicarboxylate, BPDC; DABCO = 1,4-diazabicyclo[2.2.2]octane) were exposed to 50% relative humidity (RH), 80% RH and liquid water. The combined use of X-ray diffraction, infrared spectroscopy, and scanning electron microscopy shows that the sensitivity towards humid environments critically depends on the presence of the DABCO pillar ligand. While oriented films of 2D MOF layers stay intact upon exposure to all levels of humidity, hydrolysis of Cu(2)L(2)DABCO is observed. In addition, we report that in environments with high water content, 3D-oriented Cu(2)(BDC)(2)DABCO recrystallizes as 3D-oriented Cu(2)(BDC)(2). The heteroepitaxial MOF-to-MOF transformation mechanism was studied with in situ synchrotron experiments, time-resolved AFM measurements, and electron diffraction. These findings provide valuable information on the stability of oriented MOF films for their application in functional devices and highlight the potential for the fabrication of 3D-oriented superstructures via MOF-to-MOF transformations.
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spelling pubmed-106312222023-11-15 Water sensitivity of heteroepitaxial Cu-MOF films: dissolution and re-crystallization of 3D-oriented MOF superstructures Brandner, Lea A. Linares-Moreau, Mercedes Zhou, Guojun Amenitsch, Heinz Dal Zilio, Simone Huang, Zhehao Doonan, Christian Falcaro, Paolo Chem Sci Chemistry 3D-oriented metal–organic framework (MOF) films and patterns have recently emerged as promising platforms for sensing and photonic applications. These oriented polycrystalline materials are typically prepared by heteroepitaxial growth from aligned inorganic nanostructures and display anisotropic functional properties, such as guest molecule alignment and polarized fluorescence. However, to identify suitable conditions for the integration of these 3D-oriented MOF superstructures into functional devices, the effect of water (gaseous and liquid) on different frameworks should be determined. We note that the hydrolytic stability of these heteroepitaxially grown MOF films is currently unexplored. In this work, we present an in-depth analysis of the structural evolution of aligned 2D and 3D Cu-based MOFs grown from Cu(OH)(2) coatings. Specifically, 3D-oriented Cu(2)L(2) and Cu(2)L(2)DABCO films (L = 1,4-benzenedicarboxylate, BDC; biphenyl-4,4-dicarboxylate, BPDC; DABCO = 1,4-diazabicyclo[2.2.2]octane) were exposed to 50% relative humidity (RH), 80% RH and liquid water. The combined use of X-ray diffraction, infrared spectroscopy, and scanning electron microscopy shows that the sensitivity towards humid environments critically depends on the presence of the DABCO pillar ligand. While oriented films of 2D MOF layers stay intact upon exposure to all levels of humidity, hydrolysis of Cu(2)L(2)DABCO is observed. In addition, we report that in environments with high water content, 3D-oriented Cu(2)(BDC)(2)DABCO recrystallizes as 3D-oriented Cu(2)(BDC)(2). The heteroepitaxial MOF-to-MOF transformation mechanism was studied with in situ synchrotron experiments, time-resolved AFM measurements, and electron diffraction. These findings provide valuable information on the stability of oriented MOF films for their application in functional devices and highlight the potential for the fabrication of 3D-oriented superstructures via MOF-to-MOF transformations. The Royal Society of Chemistry 2023-10-17 /pmc/articles/PMC10631222/ /pubmed/37969597 http://dx.doi.org/10.1039/d3sc04135b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Brandner, Lea A.
Linares-Moreau, Mercedes
Zhou, Guojun
Amenitsch, Heinz
Dal Zilio, Simone
Huang, Zhehao
Doonan, Christian
Falcaro, Paolo
Water sensitivity of heteroepitaxial Cu-MOF films: dissolution and re-crystallization of 3D-oriented MOF superstructures
title Water sensitivity of heteroepitaxial Cu-MOF films: dissolution and re-crystallization of 3D-oriented MOF superstructures
title_full Water sensitivity of heteroepitaxial Cu-MOF films: dissolution and re-crystallization of 3D-oriented MOF superstructures
title_fullStr Water sensitivity of heteroepitaxial Cu-MOF films: dissolution and re-crystallization of 3D-oriented MOF superstructures
title_full_unstemmed Water sensitivity of heteroepitaxial Cu-MOF films: dissolution and re-crystallization of 3D-oriented MOF superstructures
title_short Water sensitivity of heteroepitaxial Cu-MOF films: dissolution and re-crystallization of 3D-oriented MOF superstructures
title_sort water sensitivity of heteroepitaxial cu-mof films: dissolution and re-crystallization of 3d-oriented mof superstructures
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10631222/
https://www.ncbi.nlm.nih.gov/pubmed/37969597
http://dx.doi.org/10.1039/d3sc04135b
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