z-logo
open-access-imgOpen Access
Macroscopic contraction of a gel induced by the integrated motion of light-driven molecular motors
Author(s) -
Quan Li,
Gad Fuks,
Émilie Moulin,
Mounir Maaloum,
Michel Rawiso,
Igor M. Kulić,
Justin T. Foy,
Nicolas Giuseppone
Publication year - 2015
Publication title -
nature nanotechnology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 14.308
H-Index - 353
eISSN - 1748-3395
pISSN - 1748-3387
DOI - 10.1038/nnano.2014.315
Subject(s) - molecular motor , molecular machine , dissipative system , polymer , molecular switch , nanotechnology , work (physics) , metastability , chemical physics , materials science , physics , molecule , composite material , thermodynamics , quantum mechanics
Making molecular machines that can be useful in the macroscopic world is a challenging long-term goal of nanoscience. Inspired by the protein machinery found in biological systems, and based on the theoretical understanding of the physics of motion at the nanoscale, organic chemists have developed a number of molecules that can produce work by contraction or rotation when triggered by various external chemical or physical stimuli. In particular, basic molecular switches that commute between at least two thermodynamic minima and more advanced molecular motors that behave as dissipative units working far from equilibrium when fuelled with external energy have been reported. However, despite recent progress, the ultimate challenge of coordinating individual molecular motors in a continuous mechanical process that can have a measurable effect at the macroscale has remained elusive. Here, we show that by integrating light-driven unidirectional molecular rotors as reticulating units in a polymer gel, it is possible to amplify their individual motions to achieve macroscopic contraction of the material. Our system uses the incoming light to operate under far-from-equilibrium conditions, and the work produced by the motor in the photostationary state is used to twist the entangled polymer chains up to the collapse of the gel. Our design could be a starting point to integrate nanomotors in metastable materials to store energy and eventually to convert it.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here
Accelerating Research

Address

John Eccles House
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom