TY - JOUR
T1 - Strategies for Constructing and Organic Afterglow Tuning of Phenothiazine Fused Ring Systems
AU - Liu, Peipei
AU - Yah, Wanting
AU - Yuan, Wentao
AU - Li, Qianqian
AU - Li, Zhen
N1 - Publisher Copyright:
© (2026), (Higher Education Press Limited Company). All rights reserved.
PY - 2026/1
Y1 - 2026/1
N2 - Based on the phenothiazine core, we have synthesized three pentacyclic derivatives(E-2NAP, Z-2NAP, and Ph-ANT), together with two hexacyclic derivatives (E-NAP-ANT and Z-NAP-ANT). In the pentacyclic series, the asymmetric derivative E-2NAP shows stronger afterglow emission in frozen solution(77 K) than that of the symmetric Z-2NAP. In the solid state, Ph-ANT exhibits distinct thermally responsive behavior, with an afterglow lifetime reaching a maximum of 119.68 ms at 293 K, which is primarily attributed to a thermally activated delayed fluorescence(TADF) mechanism. Above 293 K, competition emerges between the TADF pathway and non-radiative decay channels of triplet excitons, resulting in a reduction in afterglow lifetime. In summary, through rational modulation of the fused-ring number and substitution positions, this work demonstrates effective adjustment of molecular conformation, solid-state packing, and room-temperature afterglow properties, providing important insights for the molecular design of phenothiazine-based room-temperature afterglow materials.
AB - Based on the phenothiazine core, we have synthesized three pentacyclic derivatives(E-2NAP, Z-2NAP, and Ph-ANT), together with two hexacyclic derivatives (E-NAP-ANT and Z-NAP-ANT). In the pentacyclic series, the asymmetric derivative E-2NAP shows stronger afterglow emission in frozen solution(77 K) than that of the symmetric Z-2NAP. In the solid state, Ph-ANT exhibits distinct thermally responsive behavior, with an afterglow lifetime reaching a maximum of 119.68 ms at 293 K, which is primarily attributed to a thermally activated delayed fluorescence(TADF) mechanism. Above 293 K, competition emerges between the TADF pathway and non-radiative decay channels of triplet excitons, resulting in a reduction in afterglow lifetime. In summary, through rational modulation of the fused-ring number and substitution positions, this work demonstrates effective adjustment of molecular conformation, solid-state packing, and room-temperature afterglow properties, providing important insights for the molecular design of phenothiazine-based room-temperature afterglow materials.
KW - Afterglow property
KW - Molecular conformation
KW - Phenothiazine fused ring
UR - https://www.scopus.com/pages/publications/105038052212
U2 - 10.7503/cjcu20250388
DO - 10.7503/cjcu20250388
M3 - 文章
AN - SCOPUS:105038052212
SN - 0251-0790
VL - 47
SP - 1
EP - 11
JO - Gaodeng Xuexiao Huaxue Xuebao/Chemical Journal of Chinese Universities
JF - Gaodeng Xuexiao Huaxue Xuebao/Chemical Journal of Chinese Universities
IS - 4
ER -