4.6 Review

Recent Progress in Azopyridine-Containing Supramolecular Assembly: From Photoresponsive Liquid Crystals to Light-Driven Devices

期刊

MOLECULES
卷 27, 期 13, 页码 -

出版社

MDPI
DOI: 10.3390/molecules27133977

关键词

azopyridine-based materials; supramolecular assembly; photoresponsive material; liquid crystal

资金

  1. National Natural Science Foundation of China [21905166, 21875132, 51921002, 52173066, 92156011]
  2. Natural Science Basic Research Program of Shaanxi [2020JQ-406]

向作者/读者索取更多资源

Azopyridine is a versatile molecule that combines photoresponsive properties with supramolecular functions. This review summarizes the photochemical and photophysical properties of azopyridine derivatives in supramolecular states and highlights their applications in areas such as liquid crystals and light-driven devices.
Azobenzene derivatives have become one of the most famous photoresponsive chromophores in the past few decades for their reversible molecular switches upon the irradiation of actinic light. To meet the ever-increasing requirements for applications in materials science, biomedicine, and light-driven devices, it is usually necessary to adjust their photochemical property from the molecular level by changing the substituents on the benzene rings of azobenzene groups. Among the diverse azobenzene derivatives, azopyridine combines the photoresponsive feature of azobenzene groups and the supramolecular function of pyridyl moieties in one molecule. This unique feature provides pH-responsiveness and hydrogen/halogen/coordination binding sites in the same chromophore, paving a new way to prepare multi-functional responsive materials through non-covalent interactions and reversible chemical reactions. This review summarizes the photochemical and photophysical properties of azopyridine derivatives in supramolecular states (e.g., hydrogen/halogen bonding, coordination interactions, and quaternization reactions) and illustrates their applications from photoresponsive liquid crystals to light-driven devices. We hope this review can highlight azopyridine as one more versatile candidate molecule for designing novel photoresponsive materials towards light-driven applications.

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