TY - JOUR
T1 - Molecular hybridization of multiple resonance cores and responsive heterocycles for versatile optoelectronic and sensing applications
AU - Chi, Zeming
AU - Sun, Yuhan
AU - Jia, Hongli
AU - Wang, Junwei
AU - Li, Chenglong
AU - Gao, Yue
AU - Zhang, Tianyi
AU - Liu, Kanglei
AU - Yin, Xiaodong
AU - Wang, Nan
N1 - Publisher Copyright:
© The Royal Society of Chemistry, 2026.
PY - 2026
Y1 - 2026
N2 - Multi-functional materials that integrate high color purity with environmental responsiveness are highly desirable for next-generation smart luminescent systems. Herein, a series of novel luminescent molecules are developed via a molecular hybridization strategy, wherein the multiple resonance (MR) core, DABNA, is integrated with classic HBT/HBO heterocycles. Owing to the incorporation of the DABNA fragment, the highly emissive, narrow-band delayed fluorescence intrinsic to MR systems is successfully retained. Concurrently, benefiting from the inherent microenvironment sensitivity of the HBT/HBO skeletons, highly tunable photophysical behaviors in response to external stimuli are achieved. Specifically, distinct acid-base (pH)-triggered switching is demonstrated, and highly sensitive luminescent responses to a Tabun analogue are realized. Furthermore, room-temperature phosphorescence (RTP) is successfully activated when these molecules are incorporated into a highly crystalline TPA matrix via a host-guest doping strategy. Their viability as active emitters is also validated through preliminary electroluminescence explorations, providing a valuable proof of concept for further OLED applications. This work represents a versatile design strategy for the development of advanced luminescent materials with multi-dimensional responsiveness.
AB - Multi-functional materials that integrate high color purity with environmental responsiveness are highly desirable for next-generation smart luminescent systems. Herein, a series of novel luminescent molecules are developed via a molecular hybridization strategy, wherein the multiple resonance (MR) core, DABNA, is integrated with classic HBT/HBO heterocycles. Owing to the incorporation of the DABNA fragment, the highly emissive, narrow-band delayed fluorescence intrinsic to MR systems is successfully retained. Concurrently, benefiting from the inherent microenvironment sensitivity of the HBT/HBO skeletons, highly tunable photophysical behaviors in response to external stimuli are achieved. Specifically, distinct acid-base (pH)-triggered switching is demonstrated, and highly sensitive luminescent responses to a Tabun analogue are realized. Furthermore, room-temperature phosphorescence (RTP) is successfully activated when these molecules are incorporated into a highly crystalline TPA matrix via a host-guest doping strategy. Their viability as active emitters is also validated through preliminary electroluminescence explorations, providing a valuable proof of concept for further OLED applications. This work represents a versatile design strategy for the development of advanced luminescent materials with multi-dimensional responsiveness.
UR - https://www.scopus.com/pages/publications/105040173786
U2 - 10.1039/d6ta02492k
DO - 10.1039/d6ta02492k
M3 - Article
AN - SCOPUS:105040173786
SN - 2050-7488
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
ER -