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首页> 外文期刊>Journal of Applied Physics >The effect of the sodium content on the structure and the optical properties of thermally poled sodium and niobium borophosphate glasses
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The effect of the sodium content on the structure and the optical properties of thermally poled sodium and niobium borophosphate glasses

机译:钠含量对热氧化钠和铌磷酸铌玻璃结构和光学性质的影响

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摘要

Six niobium rich glasses presenting different sodium contents were synthetized. On the basis of complementary infrared and Raman analysis, the influence of the sodium content and its role on the structure of the glasses prior to and following poling was examined. Correlative second harmonic generation (SHG)/Raman microscopy on the poled glasses cross section has shown a co-localization of the SHG signal and the structural variations. It also evidenced similar structural rearrangements whether sodium is removed through poling (230-300 °C) or through the alkali content defined by the starting glass compositions (melted at 1300-1500 °C). The effect of the sodium content on the optical properties, prior to and after thermal poling, is also discussed. It was found that refractive index variations induced by poling (ranging between 10~(-3) and 3 × 10~(-2)) are mainly the result of a density decrease in the poled region rather than compositional and structural changes. The electro-optic origin of the poling-induced second order nonlinear response is confirmed by the Maker Fringe SHG analysis, and the evolution of X~((2)) (2-2.5 pm/V) with the sodium content is discussed based on a selection of parameters influencing either the third order susceptibility [X~((3))] or the internal electric field strength of the poled layer.
机译:合成含有不同钠含量的六个铌玻璃。在互补红外和拉曼分析的基础上,检查了钠含量及其对抛光前玻璃结构的作用。抛光眼镜横截面上的相关性二次谐波产生(SHG)/拉曼显微镜已经示出了SHG信号的共定位和结构变化。它还证明了类似的结构重排,无论是否通过抛配(230-300℃)或通过由起始玻璃组合物定义的碱金属含量(在1300-1500℃下熔化)。还讨论了热抛光之前和之后的光学性质对光学性质的影响。发现通过抛光引起的折射率变化(范围为10〜(-3)和3×10〜(-2))主要是杆状区域的密度降低而不是组成和结构变化的结果。通过制造商边缘SHG分析证实了抛光诱导的二阶非线性响应的电光原点,并且讨论了X〜((2))(2-2.5μm/ v)的钠含量的演变选择的参数选择,影响第三阶易感性[x〜((3))]或抛光层的内部电场强度。

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  • 来源
    《Journal of Applied Physics》 |2020年第4期|043106.1-043106.11|共11页
  • 作者单位

    Institut des Sciences Moleculaires UMR5255 Universite de Bordeaux 351 coursde la Liberation 33405 Talence Cedex France;

    Institut des Sciences Moleculaires UMR5255 Universite de Bordeaux 351 coursde la Liberation 33405 Talence Cedex France;

    Institut des Sciences Moleculaires UMR5255 Universite de Bordeaux 351 coursde la Liberation 33405 Talence Cedex France;

    Institut des Sciences Moleculaires UMR5255 Universite de Bordeaux 351 coursde la Liberation 33405 Talence Cedex France;

    Institut des Sciences Moleculaires UMR5255 Universite de Bordeaux 351 coursde la Liberation 33405 Talence Cedex France;

    lnstitut de Chimie de la Matiere Condensee de Bordeaux Universite de Bordeaux 87 Avenue du Dr Schweitzer F-33608 Pessac France;

    lnstitut de Chimie de la Matiere Condensee de Bordeaux Universite de Bordeaux 87 Avenue du Dr Schweitzer F-33608 Pessac France;

    CREOL College of Optics and Photonics and Department of Materials Science and Engineering University of Central Florida Orlando Florida 32816 USA;

    Institut des Sciences Moleculaires UMR5255 Universite de Bordeaux 351 coursde la Liberation 33405 Talence Cedex France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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