Porosity Dependence of Compression and Lattice Rigidity in Metal–Organic Framework Series
Зависимость сжимаемости и жесткости кристаллической решетки от пористости в серии металлоорганических каркасов
2019-02-18
SCID: 54.1/5775sxcw
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bulk moduluscompressibilitydiamond anvil cellin situ synchrotron X-ray powder diffractionlattice distortionslinker lengthmechanical stabilitymetal–organic frameworksporosity dependencevoid fraction
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Abstract (AI)
Porous materials, including metal-organic frameworks (MOFs), are known to undergo structural changes when subjected to applied hydrostatic pressures that are both fundamentally interesting and practically relevant. With the rich structural diversity of MOFs, the development of design rules to better understand and enhance the mechanical stability of MOFs is of paramount importance. In this work, the compressibilities of seven MOFs belonging to two topological families (representing the most comprehensive study of this type to date) were evaluated using in situ synchrotron X-ray powder diffraction of samples within a diamond anvil cell. The judicious selection of these materials, representing widely studied classes of MOFs, provides broadly applicable insight into the rigidity and compression of hybrid materials. An analysis of these data reveals that the bulk modulus depends on several structural parameters (e.g., void fraction and linker length). Furthermore, we find that lattice distortions play a major role in the compression of MOFs. This study is an important step toward developing a predictive model of the structural variables that dictate the compressibility of porous materials.
Key Findings
1
Bulk modulus of MOFs depends on structural parameters including void fraction and linker length.
2
Lattice distortions are a major contributor to MOF compression under hydrostatic pressure.
3
Measured compressibilities of seven MOFs from two topological families using in situ synchrotron X-ray powder diffraction in a diamond anvil cell.
4
Study represents the most comprehensive experimental evaluation to date of MOF compressibility across these topologies and offers broadly applicable insights for hybrid materials.
5
Work advances toward a predictive model linking structural variables to porous material compressibility.
Research Object
Seven metal–organic framework (MOF) materials from two topological families studied under hydrostatic compression
Research Subject
Dependence of compressibility (bulk modulus) and lattice rigidity/distortions on porosity-related structural parameters (e.g., void fraction, linker length) in the MOF series
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2019-02-18
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