Systematic Design of Pore Size and Functionality in Isoreticular MOFs and Their Application in Methane Storage
Систематическое проектирование размера пор и функциональности в изоретикулярных МОФах и их применение для хранения метана
2002-01-18
SCID: 54.1/fmaa4vk4
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functionalized MOF-5isoreticular metal-organic frameworksmethane storage capacityorganic linker expansion (biphenyl, pyrene, terphenyl)pore size engineering
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Abstract (AI)
A strategy based on reticulating metal ions and organic carboxylate links into extended networks has been advanced to a point that allowed the design of porous structures in which pore size and functionality could be varied systematically. Metal-organic framework (MOF-5), a prototype of a new class of porous materials and one that is constructed from octahedral Zn-O-C clusters and benzene links, was used to demonstrate that its three-dimensional porous system can be functionalized with the organic groups -Br, -NH2, -OC3H7, -OC5H11, -C2H4, and -C4H4 and that its pore size can be expanded with the long molecular struts biphenyl, tetrahydropyrene, pyrene, and terphenyl. We synthesized an isoreticular series (one that has the same framework topology) of 16 highly crystalline materials whose open space represented up to 91.1% of the crystal volume, as well as homogeneous periodic pores that can be incrementally varied from 3.8 to 28.8 angstroms. One member of this series exhibited a high capacity for methane storage (240 cubic centimeters at standard temperature and pressure per gram at 36 atmospheres and ambient temperature), and others the lowest densities (0.41 to 0.21 gram per cubic centimeter) for a crystalline material at room temperature.
Key Findings
1
Developed a systematic strategy to vary pore size and functionality in isoreticular metal-organic frameworks (MOFs) by reticulating metal ions and organic carboxylate links.
2
Expanded pore sizes using longer molecular struts (biphenyl, tetrahydropyrene, pyrene, terphenyl), producing homogeneous periodic pores ranging from 3.8 to 28.8 Å.
3
Functionalized MOF-5 with organic groups (-Br, -NH2, -OC3H7, -OC5H11, -C2H4, -C4H4) while retaining its three-dimensional porous system.
4
One framework achieved high methane storage capacity: 240 cm3 (STP) per gram at 36 atm and ambient temperature; some materials reached record low crystalline densities (0.41–0.21 g·cm−3) at room temperature.
5
Synthesized an isoreticular series of 16 highly crystalline materials with open space up to 91.1% of crystal volume and tunable pore sizes.
Research Object
Isoreticular metal-organic frameworks (MOFs) derived from MOF-5 with systematically varied pore size and functionality
Research Subject
Design and systematic variation of pore size and chemical functionality in the isoreticular MOFs and their impact on properties including methane storage capacity and low crystal density
Publication Details
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2002-01-18
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