Rapid and Reversible Visible‐Light‐Induced Helix Inversion in Chiral Liquid Crystals Doped with a Negative Photochromic Molecule
Abstract
Abstract Light‐induced helix inversion in chiral nematic liquid crystals (N*LCs), where helicity reverses under photoirradiation, has emerged as a promising strategy. However, existing systems often suffer from slow response times and limited reversibility, primarily due to inefficient photoisomerization. Here we report a binaphthyl‐bridged imidazole dimer (BN‐ImD) as a negative photochromic chiral dopant that enables rapid, visible‐light‐driven, and fully reversible helix inversion in N*LCs within seconds. BN‐ImD undergoes efficient isomerization between a stable colored and metastable colorless form with a large dihedral angle change in the binaphthyl unit, while operating efficiently even in solid films and exhibiting fast thermal back reaction at room temperature. We also identified a second‐stage, irreversible helix inversion triggered by protonation of the dopant under high‐intensity irradiation, demonstrating a sequential helicity inversion that proceeds through two mechanistically distinct switching pathways of the chiral dopant. These findings highlight a new molecular design strategy for engineering multistage, light‐controlled chirality in photoresponsive materials.
Article Details
Authors (3)
Hayato Sato
Takumi Aizawa
Division of Advanced Science and Engineering, Graduate School of Science and Engineering, Chiba University, 1-33 Yayoi-cho, Inage-ku, Chiba 263-8522, Japan
Jiro Abe
Department of Chemistry and Biological Science, College of Science and Engineering