Abstract
We report a modular approach towards novel arylazotriazole
photoswitches and their photophysical characterization. Addition of lithiated
TIPS-acetylene to aryldiazonium tetrafluoroborate salts gives a wide range of
azoacetylenes, constituting an underexplored class of stable intermediates. In situ desilylation transiently leads to
terminal arylazoacetylenes that undergo copper-catalyzed cycloadditions (CuAAC)
with a diverse collection of organoazides. These include complex molecules
derived from natural products or drugs, such as colchicine, taxol, tamiflu, and
arachidonic acid. The arylazotriazoles display near-quantitative photoisomerization
and long thermal Z-half-lives. Using
the method, we introduce for the first time the design and synthesis of a diacetylene
platform that permits implementation of a consecutive and diversity-oriented
approach linking two different conjugants to independently addressable
acetylenes within a common photoswitchable azotriazole. This is showcased in
the synthesis of several photoswitchable conjugates, with potential
applications as photoPROTACs and photoswitchable biotin conjugates



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