1380588-83-9Relevant academic research and scientific papers
METAL-ORGANIC FRAMEWORK MATERIALS WITH ULTRAHIGH SURFACE AREAS
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, (2014/01/09)
A metal organic framework (MOF) material including a Brunauer-Emmett-Teller (BET) surface area greater than 7,010 m2/g. Also a metal organic framework (MOF) material including hexa-carboxylated linkers including alkyne bond. Also a metal organic framework (MOF) material including three types of cuboctahedron cages fused to provide continuous channels. Also a method of making a metal organic framework (MOF) material including saponifying hexaester precursors having alkyne bonds to form a plurality of hexa-carboxylated linkers including alkyne bonds and performing a solvothermal reaction with the plurality of hexa-carboxylated linkers and one or more metal containing compounds to form the MOF material.
Metal-organic framework materials with ultrahigh surface areas: Is the sky the limit?
Farha, Omar K.,Eryazici, Ibrahim,Jeong, Nak Cheon,Hauser, Brad G.,Wilmer, Christopher E.,Sarjeant, Amy A.,Snurr, Randall Q.,Nguyen, Sonbinh T.,Yazaydin, A. Oezguer,Hupp, Joseph T.
, p. 15016 - 15021 (2019/10/08)
We have synthesized, characterized, and computationally simulated/validated the behavior of two new metal-organic framework (MOF) materials displaying the highest experimental Brunauer-Emmett-Teller (BET) surface areas of any porous materials reported to
Designing higher surface area metal-organic frameworks: Are triple bonds better than phenyls?
Farha, Omar K.,Wilmer, Christopher E.,Eryazici, Ibrahim,Hauser, Brad G.,Parilla, Philip A.,ONeill, Kevin,Sarjeant, Amy A.,Nguyen, Sonbinh T.,Snurr, Randall Q.,Hupp, Joseph T.
supporting information; experimental part, p. 9860 - 9863 (2012/08/08)
We have synthesized, characterized, and computationally validated the high Brunauer-Emmett-Teller surface area and hydrogen uptake of a new, noncatenating metal-organic framework (MOF) material, NU-111. Our results imply that replacing the phenyl spacers of organic linkers with triple-bond spacers is an effective strategy for boosting molecule-accessible gravimetric surface areas of MOFs and related high-porosity materials.
