A Mechanical Planar Chiral Rotaxane Induces Single‐Handed Helicity in a Twisted Perylene Diimide

T Thomas E. Lawson (School of Chemistry University of Birmingham Birmingham UK) D Denis Hartmann (School of Chemistry University of Birmingham Birmingham UK) A Artemijs Krimovs (Department of Chemistry University of Durham Durham UK) Q Qilong Sun R Robert Pal (Department of Chemistry University of Durham Durham UK) T Timothy A. Barendt (Department of Chemistry, University of Oxford)

Abstract

ABSTRACT The twisting of chromophores such as perylene diimides (PDIs) into helical structures affords chiroptical properties from discrete molecules, which are of significant value for chiral sensing, imaging and catalysis. Since most helical PDI derivatives are susceptible to racemisation, chiral induction provides a promising, yet underdeveloped, strategy for generating materials with persistent chiroptical properties. For the first time, we use a mechanically planar chiral rotaxane as a configurationally stable chirality source to induce single‐handed helicity in a molecular chromophore, yielding persistent circular dichroism and circularly polarised luminescence. The large π‐surface of the PDI also enables rotaxane self‐assembly, which is rare among mechanically interlocked molecules. While mechanical bonding is shown to influence the geometry of the resulting PDI dimers, mechanical planar chirality directs their handedness, thereby providing control at both the molecular and supramolecular levels.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 31, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

T

Thomas E. Lawson

School of Chemistry University of Birmingham Birmingham UK

D

Denis Hartmann

School of Chemistry University of Birmingham Birmingham UK

A

Artemijs Krimovs

Department of Chemistry University of Durham Durham UK

Q

Qilong Sun

R

Robert Pal

Department of Chemistry University of Durham Durham UK

T

Timothy A. Barendt

Department of Chemistry, University of Oxford