Zhang Shiguo, Liu Guanyu, Mao Zhichao, Xue Shanfeng, Sun Qikun, Yang Wenjun
Key Laboratory of Rubber-plastics of Ministry of Education/Shandong Provincial, Key Laboratory of Rubber-plastics, School of Polymer Science & Engineering, Qingdao University of Science & Technology Qingdao China
Chem Sci. 2024 Oct 30;15(47):19886-19892. doi: 10.1039/d4sc06213b. eCollection 2024 Dec 4.
The internal rotation of triplet-generating molecules is detrimental to room temperature phosphorescence (RTP) radiation, and this rotation is usually mitigated by doping into rigid microenvironments. The chemical locking of internal rotation units in advance should be an effective strategy but is rarely studied in comparison. Herein, a triplet-generating molecule with two rotatable phenyls (DIA) was designed, synthesized, and then cyclized using two types of bonding bridges. We found that DIA/PMMA film shows little observable RTP afterglow despite a 148 ms lifetime, whereas carbon bridge cyclized DIA (CDIA) and oxygen bridge cyclized DIA (ODIA) emitted green and blue ultralong RTP in PMMA film, with lifetimes of 2146 ms and 2656 ms, respectively, demonstrating the potent role of pre-locking of internal rotation units in promoting RTP. Benefiting from the good spectral overlap between the RTP emissions of dopants and the absorption of perylene red (PR) in PMMA film, the almost complete triplet-to-singlet Förster resonance energy transfer was achieved under trace doping (0.1%), providing red room temperature afterglow materials with lifetimes of 1567-1800 ms. Preliminary applications of blue, green, and red afterglow materials in optical encryption and anti-counterfeiting are demonstrated. This work not only develops new triplet-generating and -radiating molecules but also introduces an effective molecular strategy for achieving ultralong RTP polymers.
三线态生成分子的内旋转不利于室温磷光(RTP)辐射,通常通过掺杂到刚性微环境中来减轻这种旋转。预先对内部旋转单元进行化学锁定应该是一种有效的策略,但相比之下很少被研究。在此,设计、合成了一种带有两个可旋转苯基的三线态生成分子(DIA),然后使用两种键桥将其环化。我们发现,尽管DIA/PMMA薄膜的寿命为148毫秒,但几乎观察不到RTP余辉,而碳桥环化的DIA(CDIA)和氧桥环化的DIA(ODIA)在PMMA薄膜中发射出绿色和蓝色的超长RTP,寿命分别为2146毫秒和2656毫秒,这证明了内部旋转单元预锁定在促进RTP方面的重要作用。受益于掺杂剂的RTP发射与PMMA薄膜中苝红(PR)吸收之间良好的光谱重叠,在痕量掺杂(0.1%)下实现了几乎完全的三线态到单线态的Förster共振能量转移,提供了寿命为1567 - 1800毫秒的红色室温余辉材料。展示了蓝色、绿色和红色余辉材料在光学加密和防伪方面的初步应用。这项工作不仅开发了新的三线态生成和辐射分子,还引入了一种实现超长RTP聚合物的有效分子策略。