| Literature DB >> 29713034 |
Mijanur Rahaman Molla1, Poornima Rangadurai1, Lucas Antony2, Subramani Swaminathan1, Juan J de Pablo2, S Thayumanavan3,4,5.
Abstract
Nature has engineered exquisitely responsive systems where molecular-scale information is transferred across an interface and propagated over long length scales. Such systems rely on multiple interacting, signalling and adaptable molecular and supramolecular networks that are built on dynamic, non-equilibrium structures. Comparable synthetic systems are still in their infancy. Here, we demonstrate that the light-induced actuation of a molecularly thin interfacial layer, assembled from a hydrophilic- azobenzene -hydrophobic diblock copolymer, can result in a reversible, long-lived perturbation of a robust glassy membrane across a range of over 500 chemical bonds. We show that the out-of-equilibrium actuation is caused by the photochemical trans-cis isomerization of the azo group, a single chemical functionality, in the middle of the interfacial layer. The principles proposed here are implemented in water-dispersed nanocapsules, and have implications for on-demand release of embedded cargo molecules.Entities:
Year: 2018 PMID: 29713034 DOI: 10.1038/s41557-018-0027-6
Source DB: PubMed Journal: Nat Chem ISSN: 1755-4330 Impact factor: 24.427