Metal‐Templated Dynamic Reorganization of Macrocyclic Gold Complexes Toward an N ‐Doped Cycloparaphenylene Catenane

ABSTRACT Self‐assembly based on a single dynamic bond smoothly converges on its thermodynamic product, but this does not extend to an interlocked architecture composed of strained, fully π ‐conjugated rings such as [ n ]cycloparaphenylenes ([ n ]CPPs), because assembling such an architecture requires forming the interlocked topology and reorganizing the rigid backbone at the same time. Herein, we report that two dynamic processes designed to operate orthogonally, reversible Au(I)─C σ ‐bond exchange and exchangeable Cu(I)─N coordination, can be coupled to promote metal‐templated dynamic reorganization. This process leads to the formation of an interlocked metal‐complex precursor, which reductive elimination then converts into a [2]catenane composed of two mechanically interlocked, fully π‐conjugated, nitrogen‐doped [12]CPP‐based nanohoops. Computational analyses provide insight into possible Cu(I)‐templated intermediates involved in the formation of the interlocked structure. The embedded sp 2 nitrogen atoms further provide coordination sites for guest‐dependent biasing of the co‐conformational mechanical helical chirality. This work establishes dynamic metal‐templated reorganization as a strategy for constructing strained, topologically complex π‐conjugated architectures beyond the reach of conventional single‐interaction self‐assembly.

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Publication Details

Journal
Angewandte Chemie International Edition
Published
2026-10-03
DOI
https://doi.org/10.1002/anie.3010868
Primary Topic
Supramolecular Chemistry and Complexes
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article
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article

Metal‐Templated Dynamic Reorganization of Macrocyclic Gold Complexes Toward an N ‐Doped Cycloparaphenylene Catenane

Hiromichi Yokoyama, Hidetoshi Kawai, Yoshitaka Tsuchido, Takuji Hatakeyama et al.
Angewandte Chemie International Edition
Supramolecular Chemistry and Complexes
article

Metal‐Templated Dynamic Reorganization of Macrocyclic Gold Complexes Toward an N ‐Doped Cycloparaphenylene Catenane

Hiromichi Yokoyama, Hidetoshi Kawai, Yoshitaka Tsuchido, Takuji Hatakeyama, Masahiro Hayakawa, Tomohito Ide, Miki Kawata
article en

Abstract

ABSTRACT Self‐assembly based on a single dynamic bond smoothly converges on its thermodynamic product, but this does not extend to an interlocked architecture composed of strained, fully π ‐conjugated rings such as [ n ]cycloparaphenylenes ([ n ]CPPs), because assembling such an architecture requires forming the interlocked topology and reorganizing the rigid backbone at the same time. Herein, we report that two dynamic processes designed to operate orthogonally, reversible Au(I)─C σ ‐bond exchange and exchangeable Cu(I)─N coordination, can be coupled to promote metal‐templated dynamic reorganization. This process leads to the formation of an interlocked metal‐complex precursor, which reductive elimination then converts into a [2]catenane composed of two mechanically interlocked, fully π‐conjugated, nitrogen‐doped [12]CPP‐based nanohoops. Computational analyses provide insight into possible Cu(I)‐templated intermediates involved in the formation of the interlocked structure. The embedded sp 2 nitrogen atoms further provide coordination sites for guest‐dependent biasing of the co‐conformational mechanical helical chirality. This work establishes dynamic metal‐templated reorganization as a strategy for constructing strained, topologically complex π‐conjugated architectures beyond the reach of conventional single‐interaction self‐assembly.

Angewandte Chemie International Edition
Tokyo University of Science (JP), Kyoto University (JP), National Institute of Technology, Tokyo College (JP)
Openalex Percentile: Top 22%
Supramolecular Chemistry and Complexes
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