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Terahertz generation via optical-heterodyne conversion: Development of a new far-infrared spectrometer and its applications toward a better understanding of nonrigid, astronomically important molecules.

机译:通过光学外差转换产生太赫兹:开发新的远红外光谱仪及其在更好地理解非刚性,天文重要分子方面的应用。

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摘要

Generation of far-infrared radiation via terahertz optical heterodyne conversion (TOHC) has been implemented in high-resolution spectroscopic applications. Using this newly developed spectrometer technology, spectroscopic investigations of NH3 in the excited nu2 state and H2O in the ground and excited nu2 states were conducted.; To overcome the linewidth, problems associated with using diode lasers as heterodyne pump sources, optical feedback techniques were employed to develop a compact, narrow-linewidth, and tunable source of THz radiation for far-infrared spectroscopy. Distributed-Bragg-reflector (DBR) semiconductor lasers at 850 nm pump a low-temperature-grown GaAs (LTG-GaAs) photomixer. Resonant optical feedback stabilizes the center frequencies and narrows the linewidths of the DBR lasers. The heterodyne linewidth (full-width at half-maximum) of two optically locked DBR lasers was reduced from 40 MHz to 50 kHz on the 20-ms timescale and from 90 MHz to 2 MHz on the 10-s timescale. To demonstrate spectroscopic capabilities, fully resolved rotational spectra of acetonitrile near 312 GHz were acquired. The detection limit was 1 x 10--4 Hz--1/2 (noise/total power).; Subsequently, a three-laser, fully fiber-coupled TOHC spectrometer was constructed to implement absolute frequency calibration. In this setup, two DBR lasers (lasers #1 and #2) are locked to different longitudinal modes of the same Fabry-Perot cavity (using a Pound-Drever-Hall scheme). Another DBR laser, laser #3, is offset locked to laser #2. The outputs of lasers #1 and #3 pump the photomixer. A microwave sweeper controls the offset-locking frequency and enables continuous tuning. All lasers are subject to simple reflector feedback, and the resulting FIR linewidth is ≈1 MHz. Rotational spectra of CO have been acquired to calibrate FSR to an accuracy of better than 100 ppb.; Using the three-laser TOHC spectrometer, inversion and rotation-inversion spectra of nu2 ammonia were acquired with frequency accuracies (≈300 kHz) much higher than existing data. Fits of these new and existing transition frequencies determined two additional centrifugal-distort ion constants in the effective Hamiltonian. Additionally, submillimeter transitions of water in the ground and nu2 states were measured. These transitions are of great interest to the astrophysics and planetary sciences communities as they are expected to be particularly important for deciphering forth-coming remote-sensing data.
机译:通过太赫兹光​​学外差转换(TOHC)产生远红外辐射已在高分辨率光谱应用中实现。使用这种新开发的光谱仪技术,对nu2激发态的NH3和基态和nu2激发态的H2O进行了光谱学研究。为了克服线宽,以及使用二极管激光器作为外差泵浦源的问题,采用了光学反馈技术来开发紧凑,窄线宽且可调谐的THz辐射源,用于远红外光谱。 850 nm的分布式布拉格反射器(DBR)半导体激光器泵浦了低温生长的GaAs(LTG-GaAs)光混合器。共振光反馈可稳定中心频率并缩小DBR激光器的线宽。两个光学锁定的DBR激光器的外差线宽(半峰全宽)在20毫秒时标上从40 MHz降低到50 kHz,在10秒时标上从90 MHz降低到2 MHz。为了证明光谱功能,获得了在312 GHz附近完全分辨的乙腈旋转光谱。检测极限为1 x 10--4 Hz--1 / 2(噪声/总功率);随后,构造了三激光,全光纤耦合TOHC光谱仪以实现绝对频率校准。在此设置中,两个DBR激光器(1号和2号激光)被锁定到同一Fabry-Perot腔的不同纵向模式(使用Pound-Drever-Hall方案)。另一台DBR激光器(激光器#3)偏移锁定到激光器#2。 #1和#3激光器的输出泵浦光混合器。微波扫频器控制偏移锁定频率并实现连续调谐。所有激光器都受到简单的反射器反馈,并且最终的FIR线宽为≈ 1 MHz。已经获得了CO的旋转光谱,以将FSR校准到优于100 ppb的精度。使用三激光TOHC光谱仪,以远高于现有数据的频率精度(约300 kHz)获得了nu2氨的反相和旋转反相光谱。这些新的和现有的过渡频率的拟合确定了有效哈密顿量中的两个额外的离心变形离子常数。另外,还测量了基态和nu2状态下水的亚毫米级跃迁。这些转换对天体物理学和行星科学界非常感兴趣,因为它们对于解密即将到来的遥感数据特别重要。

著录项

  • 作者

    Chen, Pin.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Chemistry Physical.; Physics Optics.; Physics Astronomy and Astrophysics.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 171 p.
  • 总页数 171
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;光学;天文学;
  • 关键词

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