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Potential of bismuth nanoparticles embedded in a glass matrix for spectral-selective thermo-optical devices

机译:嵌入在玻璃基体中的铋纳米粒子在光谱选择性热光器件中的潜力

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摘要

The optical transmission at a fixed visible wavelength of Bi nanoparticles embedded in a dielectric is known to show a sharp hysteretic evolution as a function of the temperature due to the reversible melting-solidification of the nanoparticles. In this work, we explore the temperature-dependent optical response of Bi nanoparticles embedded in a doped germanate glass (GeO_2-Al_2O_3-Na_2O) in a broad range from the visible to the near infrared. The transmission contrast induced by melting of the nanoparticles is shown to be strongly wavelength-dependent and evolves from positive to negative as the wavelength increases. This behaviour is well modelled using effective medium calculations, assuming that the nanoparticles size, shape, and distribution are unmodified upon melting, while their dielectric function turns from that of solid Bi to that of liquid Bi thus modifying markedly their optical response. These results open a route to the spectral tailoring of the thermo-optical response of Bi nanoparticles-based materials, which can be profitable for the engineering of wavelength-selective thermo-optical modulators and filters with optimized amplitude of modulation and wavelength dependence.
机译:已知嵌入在电介质中的Bi纳米颗粒在固定的可见波长处的光透射由于纳米颗粒的可逆熔化-固化显示出随温度的急剧滞后变化。在这项工作中,我们探索了从可见光到近红外的宽范围内嵌入掺杂的锗酸盐玻璃(GeO_2-Al_2O_3-Na_2O)中的Bi纳米粒子的温度依赖性光学响应。由纳米粒子的熔化引起的透射对比度显示出强烈的波长依赖性,并且随着波长的增加从正向负演变。假设纳米粒子的大小,形状和分布在熔化时未改变,而其介电功能从固体Bi变为液体Bi,从而显着改变了它们的光学响应,则使用有效的介质计算可以很好地模拟此行为。这些结果为基于Bi纳米粒子的材料的热光响应的光谱定制开辟了一条途径,这对于设计具有最佳调制幅度和波长依赖性的波长选择性热光调制器和滤光片的工程设计可能是有利的。

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  • 来源
    《Applied Physics Letters》 |2014年第11期|113102.1-113102.5|共5页
  • 作者单位

    Laser Processing Group, Institute de Optica, CSIC, Serrano 121, 28006 Madrid, Spain;

    Laser Processing Group, Institute de Optica, CSIC, Serrano 121, 28006 Madrid, Spain;

    Laser Processing Group, Institute de Optica, CSIC, Serrano 121, 28006 Madrid, Spain,Centre de Recherche Paul Pascal, CNRS, Universite de Bordeaux, UPR 8641, 115 Avenue Albert Schweitzer, 33600 Pessac, France;

    Laser Processing Group, Institute de Optica, CSIC, Serrano 121, 28006 Madrid, Spain;

    Departamento de Fisica, Universidad Autonoma Metropolitana Iztapalapa, Apartado Postal 55-534,Mexico 09340, DF, Mexico;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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