Xu Bin, Jia Yuehan, Ning Huiying, Teng Qian, Li Chenhao, Fang Xiaoqi, Li Jie, Zhou Heng, Meng Xiangeng, Gao Zhenhua, Wang Xue, Wang Zifei, Yuan Fanglong
School of Materials Science & Engineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan, 250353, China.
Key Laboratory of Theoretical & Computational Photochemistry of Ministry of Education, College of Chemistry, Beijing Normal University, Beijing, 100875, China.
Small. 2024 Jan;20(1):e2304958. doi: 10.1002/smll.202304958. Epub 2023 Aug 30.
Room temperature phosphorescence (RTP) has emerged as an interesting but rare phenomenon with multiple potential applications in anti-counterfeiting, optoelectronic devices, and biosensing. Nevertheless, the pursuit of ultralong lifetimes of RTP under visible light excitation presents a significant challenge. Here, new phosphorescent materials that can be excited by visible light with record-long lifetimes are demonstrated, realized through embedding nitrogen doped carbon dots (N-CDs) into a poly(vinyl alcohol) (PVA) film. The RTP lifetime of the N-CDs@PVA film is remarkably extended to 2.1 s excited by 420 nm, representing the highest recorded value for visible light-excited phosphorescent materials. Theoretical and experimental studies reveal that the robust hydrogen bonding interactions can effectively reduce the non-radiative decay rate and radiative transition rate of triplet excitons, thus dramatically prolong the phosphorescence lifetime. Notably, the RTP emission of N-CDs@PVA film can also be activated by easily accessible low-power white-light-emitting diode. More significantly, the practical applications of the N-CDs@PVA film in state-of-the-art anti-counterfeiting security and optical information storage domains are further demonstrated. This research offers exciting opportunities for utilizing visible light-activated ultralong-lived RTP systems in a wide range of promising applications.
室温磷光(RTP)已成为一种有趣但罕见的现象,在防伪、光电器件和生物传感等方面具有多种潜在应用。然而,在可见光激发下追求超长寿命的RTP是一项重大挑战。在此,通过将氮掺杂碳点(N-CDs)嵌入聚乙烯醇(PVA)薄膜中,展示了一种可被可见光激发且具有创纪录长寿命的新型磷光材料。N-CDs@PVA薄膜在420 nm激发下的RTP寿命显著延长至2.1秒,这是可见光激发磷光材料所记录到的最高值。理论和实验研究表明,强大的氢键相互作用可有效降低三重态激子的非辐射衰减率和辐射跃迁率,从而显著延长磷光寿命。值得注意的是,N-CDs@PVA薄膜的RTP发射也可由易于获得的低功率白色发光二极管激活。更重要的是,进一步展示了N-CDs@PVA薄膜在最先进的防伪安全和光学信息存储领域的实际应用。这项研究为在广泛的有前景的应用中利用可见光激活的超长寿命RTP系统提供了令人兴奋的机会。