Mechanically Interlocked Indigo Photoswitches

A Alexander M. Wilmshurst (School of Chemistry and Chemical Engineering University of Southampton Southampton UK) T Taegeun Jo (Department of Chemistry – Ångström Laboratory Uppsala University Uppsala Sweden) R Rebecca L. Kerridge (School of Chemistry and Chemical Engineering University of Southampton Southampton UK) A Akanksha Ashok Sangolkar (Department of Chemistry – Ångström Laboratory Uppsala University Uppsala Sweden) Z Zhihao Ling (College of Life Sciences, Frontier Science Center for Immunology and Metabolism, Wuhan University) A Alex Buchanan (School of Chemistry and Chemical Engineering University of Southampton Southampton UK) N Neil Wells (School of Chemistry and Chemical Engineering University of Southampton Southampton UK) Y Yael Ben‐Tal (Department of Chemistry University of British Columbia Vancouver Canada) S Stefano Crespi (Department of Chemistry – Ångström Laboratory Uppsala University Uppsala Sweden) G George T. Williams (School of Chemistry and Chemical Engineering University of Southampton Southampton UK)

Abstract

ABSTRACT Photoswitches provide the opportunity to remotely and precisely control matter on the nanoscopic scale. For many materials and biological applications, photoswitches with long wavelength response are essential; however, few switches offer inherent response to red/near infra‐red light. Previous works have described the use of intermolecular interactions as a method to redshift the activation wavelength of photoswitches and to improve thermal half‐life. However, these systems are limited in their application due to the inherent bimolecularity of this strategy preventing its use in dilute or complex environments. Herein, we describe the use of topologically constrained supramolecular interactions to improve the switching properties of an indigo photoswitch within a [2]‐rotaxane. This enabled photoswitching with 730 nm light, as well as a 100‐fold increase in thermal half‐life and double the population of the metastable state under constant irradiation. This surpasses previous attempts at using supramolecular interactions to increase the thermal half‐life by >10‐fold. This novel strategy towards the redshifting and fine‐tuning of these molecular photoswitches has implications for the design of molecular machines and applied switching technologies. We anticipate that our insights into the design of such molecules will unlock new applications for mechanically interlocked molecules.

Article Details

Volume / Issue Vol. 1, Issue 1
Published June 30, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

A

Alexander M. Wilmshurst

School of Chemistry and Chemical Engineering University of Southampton Southampton UK

T

Taegeun Jo

Department of Chemistry – Ångström Laboratory Uppsala University Uppsala Sweden

R

Rebecca L. Kerridge

School of Chemistry and Chemical Engineering University of Southampton Southampton UK

A

Akanksha Ashok Sangolkar

Department of Chemistry – Ångström Laboratory Uppsala University Uppsala Sweden

Z

Zhihao Ling

College of Life Sciences, Frontier Science Center for Immunology and Metabolism, Wuhan University

A

Alex Buchanan

School of Chemistry and Chemical Engineering University of Southampton Southampton UK

N

Neil Wells

School of Chemistry and Chemical Engineering University of Southampton Southampton UK

Y

Yael Ben‐Tal

Department of Chemistry University of British Columbia Vancouver Canada

S

Stefano Crespi

Department of Chemistry – Ångström Laboratory Uppsala University Uppsala Sweden

G

George T. Williams

School of Chemistry and Chemical Engineering University of Southampton Southampton UK