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基于无机缺陷三重态能量转移的多发射室温磷光碳点@ZnAlO复合材料

Multiemissive Room-Temperature Phosphorescent Carbon Dots@ZnAlO Composites by Inorganic Defect Triplet-State Energy Transfer.

作者信息

Song Zhijian, Liu Yingliang, Lin Xiaomin, Zhou Zhishan, Zhang Xuejie, Zhuang Jianle, Lei Bingfu, Hu Chaofan

机构信息

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.

出版信息

ACS Appl Mater Interfaces. 2021 Jul 28;13(29):34705-34713. doi: 10.1021/acsami.1c07391. Epub 2021 Jul 13.

Abstract

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.

摘要

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。

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