TY - JOUR
T1 - Organic room-temperature phosphorescence materials
AU - Liu, Dan
AU - Cai, Zhengxu
AU - Dong, Yuping
AU - Zhang, Jingyu
AU - Chen, Runfeng
AU - Chen, Yi
AU - Xu, Zhenzhen
AU - Fu, Hongbing
AU - He, Zikai
AU - Yang, Jie
AU - Li, Zhen
AU - Ma, Xiang
AU - Sun, Qi
AU - Shuai, Zhigang
AU - Chen, Zijian
AU - Li, Mengke
AU - Su, Shi Jian
AU - Data, Przemyslaw
AU - Takeda, Youhei
AU - Eyyathiyil, Jusaina
AU - Thilagar, Pakkirisamy
AU - Xie, He Lou
AU - Xiong, Yu
AU - Qi, Zhenhong
AU - Yan, Dongpeng
AU - Liu, Haichao
AU - Yang, Bing
AU - Wang, Zhonghao
AU - Yang, Chaolong
AU - Wang, Xing Huo
AU - Yang, Ying Wei
AU - Chen, Xiang
AU - Yang, Guangxin
AU - Yuan, Wang Zhang
AU - Zou, Shengnan
AU - Zhang, Yong
AU - Cheng, Aoyuan
AU - Zhang, Guoqing
AU - Zhang, Kaka
AU - She, Pengfei
AU - Zhao, Qiang
AU - Guo, Jingjing
AU - Zhao, Yanli
AU - Sun, Hao
AU - Zhu, Liangliang
AU - Wang, Tao
AU - Zysman-Colman, Eli
AU - Alam, Parvej
AU - Zhao, Zheng
AU - Tang, Ben Zhong
AU - Qin, Anjun
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026
Y1 - 2026
N2 - Organic room-temperature phosphorescence (RTP) materials have rapidly emerged as a significant research area owing to their efficient triplet-state transitions, long-lived emission lifetimes, and oxygen-sensitive behavior. These features enable diverse applications in optoelectronics, biological imaging, information encryption, and anti-counterfeiting technologies. However, no review has comprehensively summarized the advances in this field. This review begins by outlining the fundamental mechanisms underlying RTP, with emphasis on intersystem crossing, triplet-state stabilization, and suppression of nonradiative decay pathways, followed by molecular design strategies for achieving efficient and long-lived RTP, particularly those involving aggregation modulation. Next, recent advances are surveyed across various material platforms, including single- and multi-component small molecules, dendrimers, polymers, supramolecular assemblies, and organic porous frameworks, in both crystalline and amorphous forms. Moreover, emerging multifunctional systems, such as clusterization-triggered phosphorescence, circularly polarized phosphorescence, and stimuli-responsive materials, are highlighted. Third, representative applications in anti-counterfeiting, sensing, bioimaging, biotherapy, and optoelectronic devices are critically examined to demonstrate the potential of RTP materials in next-generation smart systems. Finally, key challenges are addressed, including the trade-off between quantum yield and lifetime, oxygen quenching in biological environments, and the need for mechanistic insight via advanced spectroscopic and theoretical methods. In addition, future directions are proposed, such as developing color-tunable near-infrared RTP for deep-tissue imaging and integrating RTP into multifunctional device platforms.
AB - Organic room-temperature phosphorescence (RTP) materials have rapidly emerged as a significant research area owing to their efficient triplet-state transitions, long-lived emission lifetimes, and oxygen-sensitive behavior. These features enable diverse applications in optoelectronics, biological imaging, information encryption, and anti-counterfeiting technologies. However, no review has comprehensively summarized the advances in this field. This review begins by outlining the fundamental mechanisms underlying RTP, with emphasis on intersystem crossing, triplet-state stabilization, and suppression of nonradiative decay pathways, followed by molecular design strategies for achieving efficient and long-lived RTP, particularly those involving aggregation modulation. Next, recent advances are surveyed across various material platforms, including single- and multi-component small molecules, dendrimers, polymers, supramolecular assemblies, and organic porous frameworks, in both crystalline and amorphous forms. Moreover, emerging multifunctional systems, such as clusterization-triggered phosphorescence, circularly polarized phosphorescence, and stimuli-responsive materials, are highlighted. Third, representative applications in anti-counterfeiting, sensing, bioimaging, biotherapy, and optoelectronic devices are critically examined to demonstrate the potential of RTP materials in next-generation smart systems. Finally, key challenges are addressed, including the trade-off between quantum yield and lifetime, oxygen quenching in biological environments, and the need for mechanistic insight via advanced spectroscopic and theoretical methods. In addition, future directions are proposed, such as developing color-tunable near-infrared RTP for deep-tissue imaging and integrating RTP into multifunctional device platforms.
KW - aggregation-induced emission (AIE)
KW - bioimaging
KW - circularly polarized phosphorescence (CPP)
KW - clusterization-triggered phosphorescence (CTP)
KW - covalent organic framework (COF)
KW - metal organic framework (MOF)
KW - organic light-emitting diodes (OLEDs)
KW - room-temperature phosphorescence (RTP)
UR - https://www.scopus.com/pages/publications/105045031131
U2 - 10.1007/s11426-025-3385-5
DO - 10.1007/s11426-025-3385-5
M3 - Review article
AN - SCOPUS:105045031131
SN - 1674-7291
JO - Science China Chemistry
JF - Science China Chemistry
ER -