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两种双查耳酮衍生物的超快宽带非线性光学性质及激发态动力学

Ultrafast broadband nonlinear optical properties and excited-state dynamics of two bis-chalcone derivatives.

作者信息

Shen Lei, Li Zhongguo, Wu Xingzhi, Zhou Wenfa, Yang Junyi, Song Yinglin

机构信息

School of Physical Science and Technology, Soochow University Suzhou 215006 China

School of Electronic and Information Engineering, Changshu Institute of Technology Changshu 215500 China

出版信息

RSC Adv. 2020 Apr 17;10(26):15199-15205. doi: 10.1039/d0ra01592j. eCollection 2020 Apr 16.

Abstract

The development of organic nonlinear optical (NLO) chromophores is vital for various fields such as two-photon biomedical imaging, optical limiting, In this work, two bis-chalcone molecules 1,4-bis[3-(2,4-dimethoxyphenyl)-2-acryloyl]benzene (C1) and 4,4'-bis[3-(2,4-bimethoxy phenyl)-2-acryloyl]biphenyl (C2) were synthesized and characterized. The excited-state dynamics of these two chromophores were studied using femtosecond transient absorption (TA) measurements. And their broadband nonlinear absorption properties and optical limiting (OL) response were investigated by femtosecond open-aperture Z-scan and intensity-dependent transmittance measurements in the wavelength range from 515 nm to 800 nm, respectively. The TA results demonstrate that C2 has strong excited-state absorption behavior and longer lifetime. In addition, the nonlinear absorption response of C2 was found to be superior to that of C1 in the visible range after 500 nm, which is attributed to a two-photon-absorption induced excited-state absorption mechanism. These results indicate that the nonlinear optical response and excited-state dynamics in bis-chalcone compounds could be enhanced intramolecular charge-transfer.

摘要

有机非线性光学(NLO)发色团的发展对于双光子生物医学成像、光学限幅等多个领域至关重要。在这项工作中,合成并表征了两种双查耳酮分子1,4-双[3-(2,4-二甲氧基苯基)-2-丙烯酰基]苯(C1)和4,4'-双[3-(2,4-二甲氧基苯基)-2-丙烯酰基]联苯(C2)。使用飞秒瞬态吸收(TA)测量研究了这两种发色团的激发态动力学。并且分别通过飞秒开孔Z扫描和在515纳米至800纳米波长范围内的强度依赖透射率测量研究了它们的宽带非线性吸收特性和光学限幅(OL)响应。TA结果表明C2具有强烈的激发态吸收行为和更长的寿命。此外,发现C2在500纳米之后的可见光范围内的非线性吸收响应优于C1,这归因于双光子吸收诱导的激发态吸收机制。这些结果表明,双查耳酮化合物中的非线性光学响应和激发态动力学可以通过分子内电荷转移得到增强。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b06/9052307/3156db6ea566/d0ra01592j-s1.jpg

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