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Article: The mechanism of the slippage approach to rotaxanes. Origin of the 'all- or-nothing' substituent effect

TitleThe mechanism of the slippage approach to rotaxanes. Origin of the 'all- or-nothing' substituent effect
Authors
Issue Date1998
Citation
Journal of the American Chemical Society, 1998, v. 120, n. 36, p. 9318-9322 How to Cite?
AbstractHeating a solution of the circular bis-p-phenylene-34-crown-10 and a dumbbell-shaped bipyridinium component, terminated at both ends by 4-R- phenyl-bis(4-tert-butyl-phenyl)methane-based stoppers, affords the corresponding [2]rotaxane when R is equal to H, Me, and Et, following the slippage of the macrocycle over the stoppers of the dumbbell. By contrast, no [2]rotaxane is obtained when R is equal to i-Pr. Computational investigations with the AMBER* force field provide an explanation of this dramatic substitutent effect. The phenomenon was simulated by the passage of the bis- p-phenylene-34-crown-10 macrocycle over four 4-R-phenyl-bis(4-tert-butyl- phenyl)methane model stoppers. For R equal to H, Me, Et, and i-Pr, there are two main energy barriers which have to be surpassed in order to permit the passage of the macrocycle over the bulky stoppers. When R is equal to H or Me, the rate-determining step is the passage of the macrocycle over a t-Bu- C6H4- ring. By contrast, when R is equal to Et or i-Pr, the rate- determining step becomes the passage of the macrocycle over the R-C6H4- ring. However, when R is equal to i-Pr, the resulting energy barrier is more than 21 kcal mol-1 higher than in the case of any of the other stoppers. These results are in good agreement with the experimental observations and provide a quantitative explanation for the rigorous size complementarily requirements between macrocycle and stopper which have been observed experimentally.
Persistent Identifierhttp://hdl.handle.net/10722/333658
ISSN
2022 Impact Factor: 15.0
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ISI Accession Number ID

 

DC FieldValueLanguage
dc.contributor.authorRaymo, Françisco M.-
dc.contributor.authorHouk, K. N.-
dc.contributor.authorStoddart, J. Fraser-
dc.date.accessioned2023-10-06T05:21:22Z-
dc.date.available2023-10-06T05:21:22Z-
dc.date.issued1998-
dc.identifier.citationJournal of the American Chemical Society, 1998, v. 120, n. 36, p. 9318-9322-
dc.identifier.issn0002-7863-
dc.identifier.urihttp://hdl.handle.net/10722/333658-
dc.description.abstractHeating a solution of the circular bis-p-phenylene-34-crown-10 and a dumbbell-shaped bipyridinium component, terminated at both ends by 4-R- phenyl-bis(4-tert-butyl-phenyl)methane-based stoppers, affords the corresponding [2]rotaxane when R is equal to H, Me, and Et, following the slippage of the macrocycle over the stoppers of the dumbbell. By contrast, no [2]rotaxane is obtained when R is equal to i-Pr. Computational investigations with the AMBER* force field provide an explanation of this dramatic substitutent effect. The phenomenon was simulated by the passage of the bis- p-phenylene-34-crown-10 macrocycle over four 4-R-phenyl-bis(4-tert-butyl- phenyl)methane model stoppers. For R equal to H, Me, Et, and i-Pr, there are two main energy barriers which have to be surpassed in order to permit the passage of the macrocycle over the bulky stoppers. When R is equal to H or Me, the rate-determining step is the passage of the macrocycle over a t-Bu- C6H4- ring. By contrast, when R is equal to Et or i-Pr, the rate- determining step becomes the passage of the macrocycle over the R-C6H4- ring. However, when R is equal to i-Pr, the resulting energy barrier is more than 21 kcal mol-1 higher than in the case of any of the other stoppers. These results are in good agreement with the experimental observations and provide a quantitative explanation for the rigorous size complementarily requirements between macrocycle and stopper which have been observed experimentally.-
dc.languageeng-
dc.relation.ispartofJournal of the American Chemical Society-
dc.titleThe mechanism of the slippage approach to rotaxanes. Origin of the 'all- or-nothing' substituent effect-
dc.typeArticle-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1021/ja9806229-
dc.identifier.scopuseid_2-s2.0-0032538060-
dc.identifier.volume120-
dc.identifier.issue36-
dc.identifier.spage9318-
dc.identifier.epage9322-
dc.identifier.isiWOS:000075954000023-

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