Polymer Mechanochemistry Enhanced with Mechanically Interlocked Molecules
Lead Research Organisation:
University of Manchester
Department Name: Chemistry
Abstract
Mechanical force is a formidable source of energy that, with its ability to distort, bend and stretch chemical bonds, is unique in the way it activates chemical reactions. In polymer mechanochemistry, polymers are used to transduce mechanical force towards a mechanoresponsive functional group (a "mechanophore") that then undergoes a mechanochemical transformation. Although mechanical force is exceptional in its ability to promote reaction pathways that are otherwise inaccessible, it has so far been limited to transformations involving bond cleavage or rearrangements. The origin of these limitations is due to the fact that the actuating polymers have to be linked to the mechanophore to activate it, which has so far made impossible to: repetitively activate scissile mechanophores or to build molecules. A solution to that problem would be to find a way for the polymer to 'grab' the mechanophore without being covalently attached to it. Interlocked molecules, which have been instrumental in the development of molecular machines, are ideally suited for that task because their subcomponents are entangled in space but not covalently linked. As a result, they can undergo large amplitude internal displacements, such as a macrocycle shuttling along the axle of a rotaxane, which makes them attractive force actuators. In this programme, we want to demonstrate how a rotaxane architecture can be used to repetitively activate scissile mechanophores and to build molecules.
Organisations
Publications
Cardosa-Gutierrez M
(2023)
Correction: Bond breaking of furan-maleimide adducts via a diradical sequential mechanism under an external mechanical force.
in Chemical science
Chen L
(2024)
Force-controlled release of small molecules with a rotaxane actuator.
in Nature
Chen L
(2024)
Pushing vs Pulling: The Unique Geometry of Mechanophore Activation in a Rotaxane Force Actuator.
in Journal of the American Chemical Society
Cheng Q
(2024)
Mechanochemical generation of aryne
in Chemical Science
Wu M
(2025)
A Mechanochromic Rotaxane that Releases Azetidine-Trityl-Maleimide, a Versatile Fluorescent Probe.
in Angewandte Chemie (International ed. in English)
Zhang M
(2024)
Mechanical scission of a knotted polymer.
in Nature chemistry
| Title | Carps in pond, pulling strong, broken bonds |
| Description | Cover for a publication in Chemical Science. Watercolour on cellulose paper by Qianqian Cheng. |
| Type Of Art | Artwork |
| Year Produced | 2024 |
| Impact | Lead to a greater exposure of the publication. |
| URL | https://pubs.rsc.org/en/content/articlelanding/2024/sc/d4sc90167c |
| Description | We have created a molecular machine for the force-controlled release of functional molecules. Our machine is built from a ring-shaped molecule thread on axle containing the molecular payload. When force is applied, the ring is pulled along the axle which force the release of the cargo molecules placed on its path. We have demonstrated the release of drugs, catalysts, and fluorescent molecules. We anticipate that this molecular machine will be used in a variety of applications such as drug-delivery and for the creation of self-healing materials. |
| Exploitation Route | Our force-controlled release system could be use to release healing agents for the creation of autonomous self-healing materials or for drug delivery, amongst other applications. |
| Sectors | Aerospace Defence and Marine Healthcare |
| Title | CCDC 2295694: Experimental Crystal Structure Determination |
| Description | Related Article: Qianqian Cheng, Guillaume De Bo|2024|Chemical Science|15|13181|doi:10.1039/d4sc03968h |
| Type Of Material | Database/Collection of data |
| Year Produced | 2024 |
| Provided To Others? | Yes |
| URL | http://www.ccdc.cam.ac.uk/services/structure_request?id=doi:10.5517/ccdc.csd.cc2h1vn2&sid=DataCite |
| Title | CCDC 2295695: Experimental Crystal Structure Determination |
| Description | Related Article: Qianqian Cheng, Guillaume De Bo|2024|Chemical Science|15|13181|doi:10.1039/d4sc03968h |
| Type Of Material | Database/Collection of data |
| Year Produced | 2024 |
| Provided To Others? | Yes |
| URL | http://www.ccdc.cam.ac.uk/services/structure_request?id=doi:10.5517/ccdc.csd.cc2h1vp3&sid=DataCite |
