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Determination of UV-visible-NIR absorption coefficient of graphite bulk using direct and indirect methods

机译:直接和间接测定石墨块体的紫外-可见-近红外吸收系数

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摘要

Absorption coefficient of graphite bulk pressed from 1 to 5 µm-sized crystalline grains was measured in UV-Vis-NIR range with three different methods: (i) determination of pulsed laser ablation rate as the function of laser fluence for different wavelengths (248, 337, 532, and 1064 nm, respectively); (ii) production of aerosol particles by UV laser ablation of the bulk graphite in inert atmosphere and determination of the mass-specific absorption coefficient with a four-wavelength (266, 355, 532, and 1064 nm, respectively) photoacoustic spectrometer, and (iii) spectroscopic ellipsometry in 250-1000 nm range. Taking into account the wide range of the absorption coefficients of different carbon structures, an overall relatively good agreement was observed for the three methods. The ellipsometric results fit well with the ablation rate measurement, and the data obtained with photoacoustic method are also similar in the UV and NTR region; however, the values were somewhat higher in visible and near-UV range. Taking into account the limitations of the methods, they can be promising candidates for the determination of absorption coefficient when the samples are strongly scattering and there is no possibility to perform transmissivity measurements.
机译:使用三种不同的方法在UV-Vis-NIR范围内测量从1至5 µm大小的晶粒压制的大块石墨的吸收系数:(i)确定脉冲激光烧蚀速率与不同波长的激光能量密度的关系(248,分别为337、532和1064 nm); (ii)在惰性气氛中通过对大块石墨进行UV激光烧蚀生产气溶胶颗粒,并用四波长(分别为266、355、532和1064 nm)光声光谱仪测定质量比吸收系数,并且( iii)在250-1000nm范围内的光谱椭圆偏振法。考虑到不同碳结构的吸收系数范围很广,对这三种方法观察到总体上相对较好的一致性。椭偏结果与消融速率测量结果非常吻合,并且通过光声法获得的数据在UV和NTR区域也相似。但是,该值在可见光和近紫外线范围内较高。考虑到这些方法的局限性,当样品强烈散射并且不可能进行透射率测量时,它们可能是确定吸收系数的有希望的候选者。

著录项

  • 来源
    《Applied Physics》 |2017年第10期|191-197|共7页
  • 作者单位

    MTA-SZTE Research Group on Photoacoustic Spectroscopy, University of Szeged, D6m ter 9, 6720 Szeged, Hungary,Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    MTA-SZTE Research Group on Photoacoustic Spectroscopy, University of Szeged, D6m ter 9, 6720 Szeged, Hungary;

    Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    MTA-SZTE Research Group on Photoacoustic Spectroscopy, University of Szeged, D6m ter 9, 6720 Szeged, Hungary,Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

    Department of Optics and Quantum Electronics, University of Szeged, Dom ter 9, 6720 Szeged, Hungary;

  • 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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  • 正文语种 eng
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