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Azobenzene as a photoswitchable mechanophore. | LitMetric

Azobenzene as a photoswitchable mechanophore.

Nat Chem

Collaborative Innovation Center of Advanced Microstructures, National Laboratory of Solid-State Microstructure, Key Laboratory of Intelligent Optical Sensing and Manipulation, Ministry of Education, Department of Physics, Nanjing University, Nanjing, China.

Published: March 2024

AI Article Synopsis

  • Azobenzene is a widely studied element in materials science known for its ability to respond to light, but its behavior under force has not been extensively researched.
  • This study reveals that the light-induced structural changes in azobenzene affect its rupture forces, and that the different isomers (cis and trans) of para-azobenzene show contrasting mechanical properties based on the direction of force applied.
  • By using light to control these mechanical properties, researchers can effectively engineer polymer networks that respond to light, allowing for customizable materials with varied mechanical behavior.

Article Abstract

Azobenzene has been widely explored as a photoresponsive element in materials science. Although some studies have investigated the force-induced isomerization of azobenzene, the effect of force on the rupture of azobenzene has not been explored. Here we show that the light-induced structural change of azobenzene can also alter its rupture forces, making it an ideal light-responsive mechanophore. Using single-molecule force spectroscopy and ultrasonication, we found that cis and trans para-azobenzene isomers possess contrasting mechanical properties. Dynamic force spectroscopy experiments and quantum-chemical calculations in which azobenzene regioisomers were pulled from different directions revealed that the distinct rupture forces of the two isomers are due to the pulling direction rather than the energetic difference between the two isomers. These mechanical features of azobenzene can be used to rationally control the macroscopic fracture behaviours of polymer networks by photoillumination. The use of light-induced conformational changes to alter the mechanical response of mechanophores provides an attractive way to engineer polymer networks of light-regulatable mechanical properties.

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Source
http://dx.doi.org/10.1038/s41557-023-01389-6DOI Listing

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