Author:
McGonigal Paul R.,Deria Pravas,Hod Idan,Moghadam Peyman Z.,Avestro Alyssa-Jennifer,Horwitz Noah E.,Gibbs-Hall Ian C.,Blackburn Anthea K.,Chen Dongyang,Botros Youssry Y.,Wasielewski Michael R.,Snurr Randall Q.,Hupp Joseph T.,Farha Omar K.,Stoddart J. Fraser
Abstract
The organization of trisradical rotaxanes within the channels of a Zr6-based metal–organic framework (NU-1000) has been achieved postsynthetically by solvent-assisted ligand incorporation. Robust ZrIV–carboxylate bonds are forged between the Zr clusters of NU-1000 and carboxylic acid groups of rotaxane precursors (semirotaxanes) as part of this building block replacement strategy. Ultraviolet–visible–near-infrared (UV-Vis-NIR), electron paramagnetic resonance (EPR), and 1H nuclear magnetic resonance (NMR) spectroscopies all confirm the capture of redox-active rotaxanes within the mesoscale hexagonal channels of NU-1000. Cyclic voltammetry measurements performed on electroactive thin films of the resulting material indicate that redox-active viologen subunits located on the rotaxane components can be accessed electrochemically in the solid state. In contradistinction to previous methods, this strategy for the incorporation of mechanically interlocked molecules within porous materials circumvents the need for de novo synthesis of a metal–organic framework, making it a particularly convenient approach for the design and creation of solid-state molecular switches and machines. The results presented here provide proof-of-concept for the application of postsynthetic transformations in the integration of dynamic molecular machines with robust porous frameworks.
Funder
King Abdulaziz City for Science and Technology
National Science Foundation
Fulbright Commission
DOE | Oak Ridge Institute for Science and Education
DOE Office of Basic Energy Sciences
DOD | U.S. Army
U.S. Department of Defense
Fulbright New Zealand
Fulbright US-Israel
Publisher
Proceedings of the National Academy of Sciences
Cited by
86 articles.
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