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A porous, electrically conductive hexa-zirconium(iv) metal-organic framework.
Goswami, Subhadip; Ray, Debmalya; Otake, Ken-Ichi; Kung, Chung-Wei; Garibay, Sergio J; Islamoglu, Timur; Atilgan, Ahmet; Cui, Yuexing; Cramer, Christopher J; Farha, Omar K; Hupp, Joseph T.
  • Goswami S; Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , IL 60208 , USA . Email: j-hupp@northwestern.edu.
  • Ray D; Department of Chemistry , Chemical Theory Center , Minnesota Supercomputing Institute , University of Minnesota , 207 Pleasant Street SE , Minneapolis , MN 55455 , USA.
  • Otake KI; Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , IL 60208 , USA . Email: j-hupp@northwestern.edu.
  • Kung CW; Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , IL 60208 , USA . Email: j-hupp@northwestern.edu.
  • Garibay SJ; Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , IL 60208 , USA . Email: j-hupp@northwestern.edu.
  • Islamoglu T; Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , IL 60208 , USA . Email: j-hupp@northwestern.edu.
  • Atilgan A; Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , IL 60208 , USA . Email: j-hupp@northwestern.edu.
  • Cui Y; Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , IL 60208 , USA . Email: j-hupp@northwestern.edu.
  • Cramer CJ; Department of Chemistry , Chemical Theory Center , Minnesota Supercomputing Institute , University of Minnesota , 207 Pleasant Street SE , Minneapolis , MN 55455 , USA.
  • Farha OK; Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , IL 60208 , USA . Email: j-hupp@northwestern.edu.
  • Hupp JT; Department of Chemistry , King Abdulaziz University , Jeddah 21589 , Saudi Arabia.
Chem Sci ; 9(19): 4477-4482, 2018 May 21.
Article en En | MEDLINE | ID: mdl-29896389
Engendering electrical conductivity in high-porosity metal-organic frameworks (MOFs) promises to unlock the full potential of MOFs for electrical energy storage, electrocatalysis, or integration of MOFs with conventional electronic materials. Here we report that a porous zirconium-node-containing MOF, NU-901, can be rendered electronically conductive by physically encapsulating C60, an excellent electron acceptor, within a fraction (ca. 60%) of the diamond-shaped cavities of the MOF. The cavities are defined by node-connected tetra-phenyl-carboxylated pyrene linkers, i.e. species that are excellent electron donors. The bulk electrical conductivity of the MOF is shown to increase from immeasurably low to 10-3 S cm-1, following fullerene incorporation. The observed conductivity originates from electron donor-acceptor interactions, i.e. charge-transfer interactions - a conclusion that is supported by density functional theory calculations and by the observation of a charge-transfer-derived band in the electronic absorption spectrum of the hybrid material. Notably, the conductive version of the MOF retains substantial nanoscale porosity and continues to display a sizable internal surface area, suggesting potential future applications that capitalize on the ability of the material to sorb molecular species.