首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Impressive nonlinear optical responses of a cationic porphyrin derivative in a flexible all-polymer Bragg stack on optical Tamm mode coupling
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Impressive nonlinear optical responses of a cationic porphyrin derivative in a flexible all-polymer Bragg stack on optical Tamm mode coupling

机译:在光学TAMM模式耦合下柔性全聚合物布拉格堆叠中阳离子卟啉衍生物的令人印象深刻的非线性光学响应

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Herein, we experimentally demonstrate the enhanced nonlinear optical (NLO) response of 5,15-di(pentafluorophenyl)-10,20-bis(4-N-methylpyridyl)Zn(ii) porphyrin, abbreviated as ZnP+, by utilizing Tamm plasmon polaritons formed at the interface between a truncated all-polymeric Bragg reflector and a thin gold film. In order to do so, the dielectric layer adjacent to the Au film is doped with ZnP+ molecules. The nonlinear optical absorption (NLA) and optical limiting properties are investigated by means of a single beam Z-scan method using a Q-switched Nd:YAG laser delivering 7 ns pulses at a wavelength of 532 nm. Compared to the reference sample of a single layer ZnP+ film, the enhancement factor of optical nonlinearity with the Tamm structure was found to be similar to 6-fold. Optical limiting efficiency is also found to be greatly improved with a limiting threshold of 1.04 J cm(-2). The better response is due to the enormous optical field intensity confined near the metal-dielectric interface that facilitates greater light-matter interactions and thus NLO activities in ZnP+ molecules at low input energies. These findings elucidate the efficiency of Tamm plasmon-polaritons in the optical switching and limiting applications. We believe that due to the involvement of a solution processed Bragg reflector made up of polymeric materials, our Tamm structure has greater practical value in realizing flexible, cost-effective, low threshold input all-optical devices that are susceptible to photonic integration.
机译:在此,我们通过利用Tamm等离子极性官,实验证明了5,15-DI(五氟苯基)-10,20-双(4-甲基吡啶基)Zn(II)卟啉的增强的非线性光学(NLO)响应,缩写为ZnP +形成在截短的全聚合物布拉格反射器和薄金膜之间的界面处。为此,与Au膜相邻的介电层掺杂有ZnP +分子。通过使用Q开关的Nd:YAG激光在波长为532nm的波长下输送7 ns脉冲,通过单光束Z扫描方法研究非线性光学吸收(NLA)和光学限制性。与单层ZnP +薄膜的参考样品相比,发现光学非线性与TAMM结构的增强因子类似于6倍。还发现光学限制效率有大大提高,限制阈值为1.04厘米(-2)。更好的响应是由于金属介质界面附近局限性的巨大光场强度,这促进了更大的光物质相互作用,从而在低输入能量下的ZnP +分子中的NLO活性。这些发现阐明了光学切换和限制应用中的TAMM等离子 - 极性官的效率。我们认为,由于解决方案处理的布拉格反射器由聚合物材料组成的布拉格反射器,我们的TAMM结构具有更大的实用价值,实现了易受光子集成的柔性,经济效益的低阈值输入全光学装置。

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