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Fast motion of molecular rotors in metal–organic framework struts at very low temperatures
- Source :
- Nature Chemistry. 12:845-851
- Publication Year :
- 2020
- Publisher :
- Springer Science and Business Media LLC, 2020.
-
Abstract
- The solid state is typically not well suited to sustaining fast molecular motion, but in recent years a variety of molecular machines, switches and rotors have been successfully engineered within porous crystals and on surfaces. Here we show a fast-rotating molecular rotor within the bicyclopentane–dicarboxylate struts of a zinc-based metal–organic framework—the carboxylate groups anchored to the metal clusters act as an axle while the bicyclic unit is free to rotate. The three-fold bipyramidal symmetry of the rotator conflicts with the four-fold symmetry of the struts within the cubic crystal cell of the zinc metal–organic framework. This frustrates the formation of stable conformations, allowing for the continuous, unidirectional, hyperfast rotation of the bicyclic units with an energy barrier of 6.2 cal mol−1 and a high frequency persistent for several turns even at very low temperatures (1010 Hz below 2 K). Using zirconium instead of zinc led to a different metal cluster–carboxylate coordination arrangement in the resulting metal–organic framework, and much slower rotation of the bicyclic units. Molecular rotors have been engineered within the bicyclopentane–dicarboxylate struts of a metal–organic framework—the bicyclic unit is the rotator and the carboxylate groups serve as the stator. In a zinc-based metal–organic framework, the crossed conformation of the strut–metal nodes enables fast rotation of the bicyclic moiety, but in the corresponding zirconium metal–organic framework a change in the conformation results in much slower rotation.
- Subjects :
- Bicyclic molecule
010405 organic chemistry
General Chemical Engineering
Supramolecular chemistry
General Chemistry
Cubic crystal system
CHIM/04 - CHIMICA INDUSTRIALE
010402 general chemistry
Rotation
Crystal engineering
01 natural sciences
Molecular machine
0104 chemical sciences
CHIM/02 - CHIMICA FISICA
chemistry.chemical_compound
Crystallography
chemistry
molecular rotors, molecular dynamics, MOFs, solid state NMR, spin–lattice relaxation times, energy barrier
Metal-organic framework
Carboxylate
Subjects
Details
- ISSN :
- 17554349 and 17554330
- Volume :
- 12
- Database :
- OpenAIRE
- Journal :
- Nature Chemistry
- Accession number :
- edsair.doi.dedup.....af90a23596717858d900a316b5637454
- Full Text :
- https://doi.org/10.1038/s41557-020-0495-3