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含喹啉环的新型咔唑衍生物:合成、电子跃迁及双光子吸收三维光学数据存储

Novel carbazole derivatives with quinoline ring: synthesis, electronic transition, and two-photon absorption three-dimensional optical data storage.

作者信息

Li Liang, Wang Ping, Hu Yanlei, Lin Geng, Wu Yiqun, Huang Wenhao, Zhao Quanzhong

机构信息

Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, No. 390, Qinghe Road, Jiading District, Shanghai 201800, China.

Key Lab of Functional Inorganic Material Chemistry (Heilongjiang University), Ministry of Education, Harbin 150080, China.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2015 Mar 15;139:243-52. doi: 10.1016/j.saa.2014.10.122. Epub 2014 Dec 24.

Abstract

We designed carbazole unit with an extended π conjugation by employing Vilsmeier formylation reaction and Knoevenagel condensation to facilitate the functional groups of quinoline from 3- or 3,6-position of carbazole. Two compounds doped with poly(methyl methacrylate) (PMMA) films were prepared. To explore the electronic transition properties of these compounds, one-photon absorption properties were experimentally measured and theoretically calculated by using the time-dependent density functional theory. We surveyed these films by using an 800 nm Ti:sapphire 120-fs laser with two-photon absorption (TPA) fluorescence emission properties and TPA coefficients to obtain the TPA cross sections. A three-dimensional optical data storage experiment was conducted by using a TPA photoreaction with an 800 nm-fs laser on the film to obtain a seven-layer optical data storage. The experiment proves that these carbazole derivatives are well suited for two-photon 3D optical storage, thus laying the foundation for the research of multilayer high-density and ultra-high-density optical information storage materials.

摘要

我们通过Vilsmeier甲酰化反应和Knoevenagel缩合反应设计了具有扩展π共轭的咔唑单元,以促进喹啉官能团从咔唑的3-位或3,6-位引入。制备了两种掺杂聚甲基丙烯酸甲酯(PMMA)薄膜的化合物。为了探究这些化合物的电子跃迁性质,通过使用含时密度泛函理论对单光子吸收性质进行了实验测量和理论计算。我们使用具有双光子吸收(TPA)荧光发射性质和TPA系数的800 nm钛宝石120飞秒激光对这些薄膜进行测量,以获得TPA截面。利用800 nm飞秒激光在薄膜上进行TPA光反应进行三维光学数据存储实验,以获得七层光学数据存储。实验证明,这些咔唑衍生物非常适合用于双光子三维光学存储,从而为多层高密度和超高密度光学信息存储材料的研究奠定了基础。

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