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Heat coupling effect on photothermal detection with a moving Gaussian excitation beam

机译:具有移动高斯激励梁的光热检测热耦合效应

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摘要

A strong photothermal response is beneficial to the measurement of optical and thermal properties of optical materials using the laser-induced thermal mirror method. A highly sensitive asymmetrical thermal mirror method was recently proposed by employing a moving Gaussian excitation beam [Appl. Phys. Lett. 114, 131902 (2019)]. However, the heat transfer across the interface between the thermodynamic system and the surroundings is ignored, which will lead to an error in the absolute measurement of the material properties. To address the problem, we present a theoretical and experimental study of heat transfer within the heated sample and out to the air coupling fluid in the photothermal detection with a Gaussian excitation beam moving at a constant velocity. We analyze the dynamic temperature fields inside the sample and in the surrounding air, and the phase shifts induced by the thermoelastic displacement of the sample (thermal mirror) and the refractive index gradient of air (thermal lens), as well as the diffracted intensity profiles of the probe beam in the detection plane. The experiments are implemented under normal pressure and vacuum, respectively, for a fused silica glass-air heat coupling system to verify the theoretical model. The experimental results show that the thermal lens, due to the heat coupling effect, introduces a signal deviation approximately 4.2% of the total photothermal signal, which is close to the theoretical result of 5%. (C) 2019 Optical Society of America
机译:使用激光诱导的热镜方法,强烈的光热响应有利于光学材料的光学和热性能的测量。最近通过采用移动高斯激励束[Appl,最近提出了一种高度敏感的不对称热镜方法。物理。吧。 114,131902(2019)]。然而,忽略了热力学系统和周围环境之间的界面上的传热,这将导致材料特性的绝对测量中的误差。为了解决问题,我们向加热样品内的热传递和光热检测中的空气耦合流体的热传递的理论和实验研究,通过以恒定的速度移动的高斯激发束。我们分析样品和周围空气内的动态温度场,以及由样品(热镜)的热弹性位移和空气(热镜)的折射率梯度以及衍射强度分布引起的相移。检测平面中的探针光束。该实验分别在常压和真空下实现,用于熔融石英玻璃空气热耦合系统,以验证理论模型。实验结果表明,由于热耦合效应,热透镜引入了总光热信号的信号偏差约4.2%,接近度为5%的理论结果。 (c)2019年光学学会

著录项

  • 来源
    《Applied optics》 |2019年第31期|共7页
  • 作者

    Dong Jingtao; Lu Rongsheng;

  • 作者单位

    Hefei Univ Technol Sch Instiument Sci &

    Optoelect Engn Hefei 230009 Anhui Peoples R China;

    Hefei Univ Technol Sch Instiument Sci &

    Optoelect Engn Hefei 230009 Anhui Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
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