Song Zhijian, Liu Yingliang, Lin Xiaomin, Zhou Zhishan, Zhang Xuejie, Zhuang Jianle, Lei Bingfu, Hu Chaofan
Key Laboratory for Biobased Materials and Energy of Ministry of Education/Guangdong Provincial Engineering Technology Research Center for Optical Agriculture, College of Materials and Energy, South China Agricultural University, Guangzhou 510642, P. R. China.
ACS Appl Mater Interfaces. 2021 Jul 28;13(29):34705-34713. doi: 10.1021/acsami.1c07391. Epub 2021 Jul 13.
Room-temperature phosphorescence (RTP) with carbon dots (CDs) can be exploited further if the mechanism of trap-state-mediated triplet-state energy transfer is understood and controlled. Herein, we developed an in situ calcination method for the preparation of a CDs@ZnAlO composite material that exhibits unique UV and visible light-excitable ultra-broad-band RTP. The ZnAlO matrix can protect the triplet emissions of CDs by the confinement effect and spin-orbit coupling. In addition, benefitting from the efficient energy transfer between the inorganic trap state and the triplet state of CDs, the special yellow to red RTP of CDs@ZnAlO composites can be realized. A slow-decaying phosphorescence at 570 nm with a lifetime of 1.05 s and a fast-decaying phosphorescence at 400 nm with a lifetime of 0.41 s were observed with UV irradiation of 290 nm, which originated from the surface and core triplet states of CDs, respectively. Based on the unique RTP performance, anti-counterfeiting and information encryption were successfully realized using the CDs@ZnAlO composites with LED light or UV light.
如果能够理解并控制陷阱态介导的三重态能量转移机制,那么碳点(CDs)的室温磷光(RTP)性能就能得到进一步开发利用。在此,我们开发了一种原位煅烧方法来制备CDs@ZnAlO复合材料,该材料展现出独特的紫外光和可见光激发的超宽带RTP。ZnAlO基质可通过限域效应和自旋 - 轨道耦合来保护CDs的三重态发射。此外,受益于无机陷阱态与CDs三重态之间的高效能量转移,可实现CDs@ZnAlO复合材料特殊的从黄色到红色的RTP。在290 nm紫外光照射下,观察到在570 nm处有寿命为1.05 s的缓慢衰减磷光以及在400 nm处有寿命为0.41 s的快速衰减磷光,它们分别源自CDs的表面和核心三重态。基于独特的RTP性能,使用CDs@ZnAlO复合材料搭配LED灯或紫外光成功实现了防伪和信息加密。