State Key Laboratory of Luminescent Materials and Devices, School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou, China.
Chem Soc Rev. 2016 Apr 21;45(8):2090-136. doi: 10.1039/c5cs00582e. Epub 2016 Feb 3.
Owing to the unique mechanism of photoelectron storage and release, long persistent phosphorescence, also called long persistent luminescence or long lasting afterglow/phosphorescence, plays a pivotal role in the areas of spectroscopy, photochemistry, photonics and materials science. In recent years, more research has focused on the manipulation of the morphology, operational wavebands and persistent duration of long persistent phosphors (LPPs). These desired achievements stimulated the growing interest in designing bio-labels, photocatalysts, optical sensors, detectors and photonic devices. In this review, we present multidisciplinary research on synthetic methods, afterglow mechanisms, characterization techniques, materials system, and applications of LPPs. First, we introduce the recent developments in LPPs for the synthesis of nanoparticles from the aspects of particle sizes, monodispersity and homogeneity based on the urgent application of bio-imaging. In the later sections, we present the possible mechanisms, which involve the variation of trap distribution during the trapping and de-trapping process, complicated photo-ionization reaction of trap site levels and impurity centers together with their corresponding migration kinetics of carriers. Meanwhile, we emphasize the characterization techniques of defects, used to qualitatively or quantitatively describe the types, concentrations and depths of the traps. This review article also highlights the recent advances in suggested LPPs materials with a focus on the LPPs' hosts and optically active centers as well as their control, tuning and intrinsic links. We further discuss the classification of LPPs based on the different emission and excitation wavebands from the ultraviolet to the near-infrared region along with an overview of the activation mode of afterglow. Afterwards, we provide an exhibition of new products towards diverse application fields, including solar energy utilization, bio-imaging, diagnosis, and photocatalysts. Finally, we summarize the current achievements, discuss the problems and provide suggestions for potential future directions in the aforementioned parts.
由于光电子存储和释放的独特机制,长余辉磷光体(也称为长余辉发光或持久余辉/磷光体)在光谱学、光化学、光子学和材料科学领域发挥着关键作用。近年来,更多的研究集中在长余辉磷光体(LPPs)的形态、操作波段和持久持续时间的操纵上。这些期望的成果激发了人们对设计生物标记物、光催化剂、光学传感器、探测器和光子器件的兴趣不断增长。在这篇综述中,我们展示了关于 LPPs 的合成方法、余辉机制、表征技术、材料体系和应用的多学科研究。首先,我们从生物成像的应用角度出发,介绍了 LPPs 在纳米粒子合成方面的最新进展,包括粒径、单分散性和均一性。在后面的部分,我们提出了可能的机制,涉及陷阱分布在捕获和释放过程中的变化、陷阱能级和杂质中心的复杂光离化反应以及载流子的迁移动力学。同时,我们强调了用于定性或定量描述陷阱类型、浓度和深度的缺陷表征技术。本文还重点介绍了建议的 LPPs 材料的最新进展,重点介绍了 LPPs 的主体和光活性中心及其控制、调谐和内在联系。我们进一步根据从紫外线到近红外区域的不同发射和激发波段,讨论了 LPPs 的分类以及余辉的激活模式。然后,我们展示了针对不同应用领域的新产品,包括太阳能利用、生物成像、诊断和光催化剂。最后,我们总结了当前的成就,讨论了存在的问题,并对上述部分提出了潜在的未来发展方向的建议。