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Azobenzene's Cross-Scale Optics and Photonics: Molecular Photoswitching, Mesoscopic Material Motions, and Adaptive Devices.

Created on 06 Aug 2026

Authors

Heeju Son, Soyul Kwak, Heerin Noh, Minsang Kim, Doyeon Noh, Subhayan Chakraborty, Jaewon Lee, YongDeok Cho, Kyeongsoo Kim, Taewoong Eom, Moonyoung Kim, Jangwon Kim, Hoyoung Lee, Soyoung Lee, Jaehun Kim, Grace G D Han, Shin-Tson Wu, Stefano Oscurato, Arri Priimagi, Marina Saphiannikova, Seungwoo Lee

Published in

Advanced materials (Deerfield Beach, Fla.). Pages e22702. Aug 05, 2026. Epub Aug 05, 2026.

Abstract

Azobenzene is a widely studied molecular photoswitch that converts light absorption into reversible E/Z isomerization and, when embedded in soft or ordered media, into optical, mechanical, thermal, transport, and bioadaptive functions. This review examines azobenzene optics and photonics through a cross-scale structure-property-function framework. We first summarize the mechanistic landscape of trans-cis isomerization, including π-π* and n-π* excitation, ultrafast relaxation pathways, and molecular design rules that tune absorption wavelength, quantum yield, photostationary state (PSS), and cis-state lifetime. We then connect single-molecule switching to collective responses in azobenzene-containing materials, including photoalignment and all-optical poling, stress-driven surface patterning in amorphous polymers, photomechanics in liquid-crystalline polymer networks (LCNs) and liquid crystal elastomers (LCEs), and phase-transition-based responses. On this basis, we organize applications according to their dominant device functions: information processing and reconfigurable photonics, dynamic liquid crystals (LCs) and adaptive optical devices, molecular solar thermal (MOST) energy storage, mechanical motion and soft robotics, mechanically enabled processing, bioadaptive transport, and opto/iontronic interfaces. The Review emphasizes quantitative links between molecular orientation, stress generation, and macroscopic deformation, and highlights how modeling and materials design can improve visible/red-light operation, fatigue resistance, penetration depth, manufacturability, and device integration. We close by outlining challenges and opportunities for durable, scalable, and multifunctional azobenzene-based adaptive photonic matter.

PMID:
42555241
Bibliographic data and abstract were imported from PubMed on 06 Aug 2026.

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