Shi Jiaju, Zhou Yusheng, Lin Faxu, Li Ge, Yan Wenqing, Liang Guodong, Tang Ben Zhong, Qin Wei
PCFM Lab, School of Materials Science and Engineering, Sun Yat-sen University, Guangzhou, 510275, China.
Medical Research Institute, Guangdong Provincial People's Hospital (Guangdong Academy of Medical Sciences), Southern Medical University, Guangzhou, 510080, China.
Adv Mater. 2025 Aug 8:e12325. doi: 10.1002/adma.202412325.
Organic materials with afterglow properties have gained significant interest owing to their long lifetimes and potential applications. However, most of these organic materials emit light in the visible region, posing a significant challenge for developing near-infrared afterglow (NIR-AG). In this study, NIR-AG materials with ultralong lifetimes and aggregation-induced emission (AIE) features are fabricated using a relay phosphor strategy. Red relay phosphors are easily fabricated by incorporating pyrene derivatives into an electron-rich matrix. The triplet excited energy of the relay phosphor is manipulated and effectively transferred to the excited singlet state of the AIE molecule via phosphorescence resonance energy transfer. Following the radiative decay of the excitons, an exceptional NIR-AG is ultimately generated with an ultralong lifetime of 269 ms at an emission maximum of 822 nm. The NIR-AG materials with ultralong lifetimes and AIE characteristics are reported for the first time, demonstrating one of the best performances among the organic afterglow materials. Notably, the NIR-AG materials can be processed into diverse aggregated forms for advanced anticounterfeiting, fingerprint identification, information encryption, and tissue penetration imaging using red and NIR dual-delay channels with good performances. These promising findings are encouraging for the development of organic NIR-AG materials with exceptional performance.
具有余辉特性的有机材料因其长寿命和潜在应用而备受关注。然而,这些有机材料大多在可见光区域发光,这对开发近红外余辉(NIR-AG)构成了重大挑战。在本研究中,采用中继磷光体策略制备了具有超长寿命和聚集诱导发光(AIE)特性的NIR-AG材料。通过将芘衍生物掺入富电子基质中,很容易制备出红色中继磷光体。中继磷光体的三重态激发能通过磷光共振能量转移被调控并有效地转移到AIE分子的激发单重态。在激子的辐射衰减之后,最终产生了异常的NIR-AG,在发射最大值822nm处具有269ms的超长寿命。首次报道了具有超长寿命和AIE特性的NIR-AG材料,其在有机余辉材料中表现出最佳性能之一。值得注意的是,NIR-AG材料可以加工成各种聚集形式,用于先进的防伪、指纹识别、信息加密以及使用具有良好性能的红色和近红外双延迟通道进行组织穿透成像。这些有前景的发现对开发具有卓越性能的有机NIR-AG材料具有鼓舞作用。