Trap-induced white circularly polarized persistent luminescence from a host-guest molecular system
Abstract
Abstract Circularly polarized luminescence (CPL), which encodes non-replicable optical information in the characteristics of chirality, wavelength, and time, holds significant promise for advanced information technologies. However, effective strategies for systematically regulating multiple optical properties remain elusive. Herein, we report a general approach that imparts hour-level dual-band persistent luminescence to CPL materials through the introduction of trap states into an organic host-guest molecular system. The electrons released from traps repopulate both the singlet and triplet states of the chiral guest molecules, producing dual-band white circularly polarized persistent luminescence for 4 h at room temperature. Systematic characterization reveals that two different chiral configurations leave the trap depth basically unaltered, while conferring pronounced CPL activity on these composites with a maximum luminescence dissymmetry factor g lum of 1.6 × 10 −3 /−2.3 × 10 −3 . Leveraging these characteristics, we present a proof-of-concept demonstration of warm-white circularly polarized persistent luminescence materials for Morse-code encryption and multimodal information storage.
Article Details
Authors (12)
Yajing Wang
Department of Preventive Veterinary Medicine, College of Veterinary Medicine, Northwest A&F University
Cunjian Lin
Yang Li
Chenhan Zhan
Rujun Yang
Zishuang Wu
Shunjie Shu
Wenpeng Ye
Wenting Deng
Jumpei Ueda
Yixi Zhuang
Rong-Jun Xie