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Principles and promise of Fabry–Perot resonators at terahertz frequencies

机译:太赫兹频率法布里 - 珀罗谐振器的原则和承诺

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摘要

Fabry–Perot resonators have tremendous potential to enhance the sensitivity of spectroscopic systems at terahertz (THz) frequencies. Increasing sensitivity will be of benefit in compensating for the relatively low power of current high resolution continuous wave THz radiation techniques, and to fully express the potential of THz spectroscopy as source power increases. Improved sensitivities, and thus scanning speeds, will allow detailed studies of the complex vibration-rotation-tunneling dynamics that large molecules show at THz wavelengths, and will be especially important in studying more elusive, transient species such as those present in planetary atmospheres and the interstellar medium. Coupling radiation into the cavity presents unique challenges at THz frequencies, however, meaning that the cavity configurations common in neighboring frequency domains cannot simply be translated. Instead, novel constructions are needed. Here we present a resonator design in which wire-grid polarizers serve as the input and output coupling mirrors. Using this configuration, Q-factors of a few times 10^5 are achieved near 0.3 THz. To aid future investigations, the parameter space that limits the quality of the cavity is explored and paths to improved performance highlighted. Lastly, the performance of polarizer cavity-based Fourier transform (FT) THz spectrometers is discussed, in particular those design optimizations that should allow for the construction of THz instrumentation that rivals and eventually surpasses the sensitivities achieved with modern FT-microwave cavity spectrometers.
机译:法布里-珀罗谐振器具有巨大的潜力,可以提高光谱系统在太赫兹(THz)频率下的灵敏度。灵敏度的提高将有利于补偿当前高分辨率连续波THz辐射技术的相对较低的功率,并随着源功率的增加而充分表达THz光谱学的潜力。灵敏度的提高以及扫描速度的提高,将有助于详细研究大分子在太赫兹波长下显示的复杂的振动-旋转隧道动力学,并且在研究更难以捉摸的瞬态物种(例如行星大气和大气中存在的瞬态物种)中尤其重要星际介质。将辐射耦合到空腔中对THz频率提出了独特的挑战,但是,这意味着不能简单地转换相邻频域中常见的空腔配置。相反,需要新颖的构造。在这里,我们介绍了一种谐振器设计,其中线栅偏振器用作输入和输出耦合镜。使用这种配置,可以在0.3 THz附近获得10倍5倍的Q因子。为了帮助将来的研究,探索了限制型腔质量的参数空间,并强调了改善性能的途径。最后,讨论了基于偏振器腔的傅立叶变换(FT)太赫兹光谱仪的性能,特别是那些设计优化,这些设计优化应使THz仪器的构造可与现代FT微波腔光谱仪相媲美并最终超过其灵敏度。

著录项

  • 作者

    R. Braakman; G. A. Blake;

  • 作者单位
  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"english","id":9}
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