Harnessing Photoinduced Azobenzene Switching for Rational Design of Smart Nanoporous Metal−Organic Frameworks

Abstract Azobenzene-functionalized metal−organic frameworks (Azo-MOFs) have emerged as versatile nanoporous platforms for constructing light-responsive materials with tunable physicochemical properties. This review critically examines their molecular design, synthesis, photo-switching mechanisms, characterization, and functional applications, with particular emphasis on the structure−photo-response-property−performance relationships governing their behavior. The principal azobenzene incorporation modes, including backbone linkers, pendant groups, and noncovalently encapsulated guests, are compared in terms of molecular mobility, pore confinement, framework coupling, and switching efficiency, while thin-film fabrication is discussed separately as a processing and device integration strategy. Experimental characterization and computational approaches are evaluated according to their ability to distinguish genuine photoisomerization from photothermal, desorption, degradation, and irreversible structural effects. Available evidence indicates that efficient functional switching requires a balance between sufficient conformational freedom for azobenzene isomerization and sufficient framework rigidity to preserve structural integrity and amplify molecular changes into macroscopic responses. Representative applications in adsorption, separation, catalysis, controlled release, energy storage, and optical information processing are critically assessed, with attention paid to whether the reported performance changes can be directly attributed to photoisomerization. Persistent challenges include incomplete photostationary-state conversion, limited photon penetration, thermal relaxation, fatigue, framework degradation, biosafety, and scalable production. Finally, standardized reporting of irradiation conditions, photostationary-state composition, switching kinetics, quantum yield, thermal lifetime, cycling retention, and functional modulation is proposed to enable quantitative benchmarking and guide the rational development of next-generation Azo-MOFs.

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Publication Details

Journal
ACS Applied Nano Materials
Published
2026-09-18
DOI
https://doi.org/10.1021/acsanm.6c02923
Primary Topic
Metal-Organic Frameworks: Synthesis and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Harnessing Photoinduced Azobenzene Switching for Rational Design of Smart Nanoporous Metal−Organic Frameworks

Tong Yang, Juan Chen, Hongyi Gao, Hongyuan Wang et al.
ACS Applied Nano Materials
Metal-Organic Frameworks: Synthesis and Applications
article

Harnessing Photoinduced Azobenzene Switching for Rational Design of Smart Nanoporous Metal−Organic Frameworks

Tong Yang, Juan Chen, Hongyi Gao, Hongyuan Wang, Siqi Liu
article en

Abstract

Abstract Azobenzene-functionalized metal−organic frameworks (Azo-MOFs) have emerged as versatile nanoporous platforms for constructing light-responsive materials with tunable physicochemical properties. This review critically examines their molecular design, synthesis, photo-switching mechanisms, characterization, and functional applications, with particular emphasis on the structure−photo-response-property−performance relationships governing their behavior. The principal azobenzene incorporation modes, including backbone linkers, pendant groups, and noncovalently encapsulated guests, are compared in terms of molecular mobility, pore confinement, framework coupling, and switching efficiency, while thin-film fabrication is discussed separately as a processing and device integration strategy. Experimental characterization and computational approaches are evaluated according to their ability to distinguish genuine photoisomerization from photothermal, desorption, degradation, and irreversible structural effects. Available evidence indicates that efficient functional switching requires a balance between sufficient conformational freedom for azobenzene isomerization and sufficient framework rigidity to preserve structural integrity and amplify molecular changes into macroscopic responses. Representative applications in adsorption, separation, catalysis, controlled release, energy storage, and optical information processing are critically assessed, with attention paid to whether the reported performance changes can be directly attributed to photoisomerization. Persistent challenges include incomplete photostationary-state conversion, limited photon penetration, thermal relaxation, fatigue, framework degradation, biosafety, and scalable production. Finally, standardized reporting of irradiation conditions, photostationary-state composition, switching kinetics, quantum yield, thermal lifetime, cycling retention, and functional modulation is proposed to enable quantitative benchmarking and guide the rational development of next-generation Azo-MOFs.

ACS Applied Nano Materials
University of Science and Technology Beijing (CN)
Fundamental Research Funds for the Central Universities
Affordable and clean energy
Openalex Percentile: Top 26%
Metal-Organic Frameworks: Synthesis and Applications
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