Design and Structural Transformations of Zinc(II) Knotted Cage Frameworks
Abstract
Abstract Interwoven architectures feature in biomolecules such as proteins, DNA, and RNA. However, the high‐yielding syntheses and controlled structural transformations of artificial interwoven structures, particularly those exhibiting intricate topologies and bifurcated strands, remain a challenge. In this study, we present a rational design strategy that harnesses the rigidity of tailored ligands in combination with zinc coordination to direct the self‐assembly process, thus enabling the controlled synthesis of covalently linked trefoil perplexane and trefoil tetrahedral knotted cage frameworks. We further elucidate the role of structural rigidity in governing framework transformations, demonstrating two‐way interconversion between interwoven and non‐interwoven architectures, accompanied by tunable guest encapsulation and release. Notably, the incorporation of peripheral crosslinkers was found to lock the cage conformation, thereby regulating its guest binding properties. In addition, the sequence of subcomponent addition was found to be critical to the product outcome: Initial construction of a covalently‐linked knotted cage framework stabilizes kinetic intermediates during self‐assembly, providing access to distinct products.
Article Details
Authors (8)
Yuchong Yang
Yusuf Hamied Department of Chemistry
Sabrina Y. Hu
Yusuf Hamied Department of Chemistry University of Cambridge Cambridge CB2 1EW United Kingdom
Tanya K. Ronson
Yusuf Hamied Department of Chemistry
Paula C.P. Teeuwen
Yusuf Hamied Department of Chemistry University of Cambridge Cambridge CB2 1EW United Kingdom
Sudhakar Gaikwad
Yusuf Hamied Department of Chemistry University of Cambridge Cambridge UK
Andrew W. Heard
Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, United Kingdom
David J. Wales
Department of Chemistry
Jonathan R. Nitschke
Yusuf Hamied Department of Chemistry