Issue 28, 2024, Issue in Progress

Acid–base responsive molecular switching of a [2]rotaxane incorporating two different stations in an axle component

Abstract

Interlocked compounds such as rotaxanes and catenanes exhibit unique kinetic properties in response to external chemical or physical stimuli and are therefore expected to be applied to molecular machines and molecular sensors. To develop a novel rotaxane for this application, an isophthalamide macrocycle and a neutral phenanthroline axle were used. Stable pseudorotaxanes are known to be formed using hydrogen bonds and π–π interactions. In this study, we designed a non-symmetric axial molecule and synthesized a [2]rotaxane with the aim of introducing two different stations; a phenanthroline and a secondary amine/ammonium unit. Furthermore, 1H NMR measurements demonstrated that the obtained rotaxane acts as a molecular switch upon application of external acid/base stimuli.

Graphical abstract: Acid–base responsive molecular switching of a [2]rotaxane incorporating two different stations in an axle component

Supplementary files

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Article information

Article type
Paper
Submitted
14 May 2024
Accepted
11 Jun 2024
First published
19 Jun 2024
This article is Open Access
Creative Commons BY license

RSC Adv., 2024,14, 19780-19786

Acid–base responsive molecular switching of a [2]rotaxane incorporating two different stations in an axle component

R. Yamane, Y. Asai, N. Takiguchi, A. Okamoto, S. Kawano, Y. Tokunaga, M. Shizuma and M. Muraoka, RSC Adv., 2024, 14, 19780 DOI: 10.1039/D4RA03532A

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