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Article: Thermodynamic forecasting of mechanically interlocked switches

TitleThermodynamic forecasting of mechanically interlocked switches
Authors
Issue Date2009
Citation
Organic and Biomolecular Chemistry, 2009, v. 7, n. 21, p. 4391-4405 How to Cite?
AbstractMechanically interlocked molecular (MIM) switches in the form of bistable [2]rotaxanes and [2]catenanes have proven to be - when incorporated in molecular electronic devices (MEDs) and in nanoelectromechanical systems (NEMS) - a realistic and viable alternative to the silicon chip density challenge. Structural modifications and chemical environment can have a large impact on the relaxation thermodynamics of the molecular motions, such as translation and circumrotation in bistable rotaxanes and catenanes responsible for the operation of devices based on MIMs. The effects of structural modifications on the difference in free energy (ΔGo) for the equilibrium processes in switchable MIMs can be predicted by considering, firstly, the interactions present in their precursor pseudorotaxanes. By employing isothermal titration microcalorimetry (ITC) to investigate the thermodynamic parameters governing pseudorotaxane formation for a series of monosubstituted, acceptor host cyclophanes with various donor guests, in conjunction with X-ray crystallographic data, an obvious link between the noncovalent bonding interactions in pseudorotaxanes and MIMs that survive following the formation of the mechanical bond can be identified. It follows that the changes (ΔΔGo values) in the difference of free energy during the formation of different pseudorotaxanes can subsequently be extrapolated to predict ΔGo values for the thermodynamics associated with switching in analogous MIM switches, employing the same donor-acceptor recognition components. In this manner, a systematic and predictive thermodynamic approach to designing and tuning switchable MIMs and MIM-based materials has been established. Additionally, these thermodynamic relationships are reminiscent of the long forgotten concept of the 'parachor' as a molecular descriptor with respect to the additivity of physical properties in chemical systems dealing specifically with quantitative structure property-activity relationships (QSPR/QSAR). © 2009 The Royal Society of Chemistry.
Persistent Identifierhttp://hdl.handle.net/10722/332903
ISSN
2021 Impact Factor: 3.890
2020 SCImago Journal Rankings: 0.923
ISI Accession Number ID

 

DC FieldValueLanguage
dc.contributor.authorOlson, Mark A.-
dc.contributor.authorBraunschweig, Adam B.-
dc.contributor.authorIkeda, Taichi-
dc.contributor.authorFang, Lei-
dc.contributor.authorTrabolsi, Ali-
dc.contributor.authorSlawin, Alexandra M.Z.-
dc.contributor.authorKhan, Saeed I.-
dc.contributor.authorStoddart, J. Fraser-
dc.date.accessioned2023-10-06T05:15:13Z-
dc.date.available2023-10-06T05:15:13Z-
dc.date.issued2009-
dc.identifier.citationOrganic and Biomolecular Chemistry, 2009, v. 7, n. 21, p. 4391-4405-
dc.identifier.issn1477-0520-
dc.identifier.urihttp://hdl.handle.net/10722/332903-
dc.description.abstractMechanically interlocked molecular (MIM) switches in the form of bistable [2]rotaxanes and [2]catenanes have proven to be - when incorporated in molecular electronic devices (MEDs) and in nanoelectromechanical systems (NEMS) - a realistic and viable alternative to the silicon chip density challenge. Structural modifications and chemical environment can have a large impact on the relaxation thermodynamics of the molecular motions, such as translation and circumrotation in bistable rotaxanes and catenanes responsible for the operation of devices based on MIMs. The effects of structural modifications on the difference in free energy (ΔGo) for the equilibrium processes in switchable MIMs can be predicted by considering, firstly, the interactions present in their precursor pseudorotaxanes. By employing isothermal titration microcalorimetry (ITC) to investigate the thermodynamic parameters governing pseudorotaxane formation for a series of monosubstituted, acceptor host cyclophanes with various donor guests, in conjunction with X-ray crystallographic data, an obvious link between the noncovalent bonding interactions in pseudorotaxanes and MIMs that survive following the formation of the mechanical bond can be identified. It follows that the changes (ΔΔGo values) in the difference of free energy during the formation of different pseudorotaxanes can subsequently be extrapolated to predict ΔGo values for the thermodynamics associated with switching in analogous MIM switches, employing the same donor-acceptor recognition components. In this manner, a systematic and predictive thermodynamic approach to designing and tuning switchable MIMs and MIM-based materials has been established. Additionally, these thermodynamic relationships are reminiscent of the long forgotten concept of the 'parachor' as a molecular descriptor with respect to the additivity of physical properties in chemical systems dealing specifically with quantitative structure property-activity relationships (QSPR/QSAR). © 2009 The Royal Society of Chemistry.-
dc.languageeng-
dc.relation.ispartofOrganic and Biomolecular Chemistry-
dc.titleThermodynamic forecasting of mechanically interlocked switches-
dc.typeArticle-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1039/b911874h-
dc.identifier.pmid19830288-
dc.identifier.scopuseid_2-s2.0-70350038065-
dc.identifier.volume7-
dc.identifier.issue21-
dc.identifier.spage4391-
dc.identifier.epage4405-
dc.identifier.isiWOS:000270795700010-

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