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Techniques in molecular spectroscopy: from broad bandwidth to high resolution.

机译:分子光谱技术:从宽带宽到高分辨率。

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摘要

This thesis presents a range of different experiments all seeking to extended the capabilities of molecular spectroscopy and enable new applications. The new technique of cavity-enhanced direct frequency comb spectroscopy (CE-DFCS) provides a unique combination of broad bandwidth, high resolution, and high sensitivity that can be useful for a wide range of applications. Previous demonstrations of CE-DFCS were confined to the visible or near-infrared and operated over a limited bandwidth: for many applications it is desirable to increase the spectral coverage and to extend to the mid-infrared where strong, fundamental vibrational modes of molecules occur. There are several key requirements for CE-DFCS: a frequency comb source that provides broad bandwidth and high resolution, an optical cavity for high sensitivity, and a detection system capable of multiplex detection of the comb spectrum transmitted through the cavity. We first discuss comb sources with emphasis on the coherence properties of spectral broadening in nonlinear fiber and the development of a high-power frequency comb source in the mid-infrared based on an optical-parametric oscillator (OPO). To take advantage of this new mid-infrared comb source for spectroscopy, we also discuss the development of a rapid-scan Fourier-transform spectrometer (FTS). We then discuss the first demonstration of CE-DFCS with spectrally broadened light from a highly nonlinear fiber with the application to measurements of impurities in semiconductor manufacturing gases. We also cover our efforts towards extending CE-DFCS to the mid-infrared using the mid-infrared OPO and FTS to measure ppb levels of various gases important for breath analysis and atmospheric chemistry and highlight some future applications of this system.;In addition to the study of neutral molecules, broad-bandwidth and high-resolution spectra of molecular ions are useful for astrochemistry where many of the observed molecules are ionic, for studying molecules such as CH5 + with highly non-classical behavior, and for tests of fundamental physics. We have developed a new technique---frequency comb velocity-modulation spectroscopy---that is the first system to enable rapid, broadband spectroscopy of molecular ions with high resolution. We have demonstrated the ability to record 150 cm-1 of spectra consisting of 45,000 points in 30 minutes and have used this system to record over 1000 cm-1 of spectra of HfF+ in the near-infrared around 800 nm. After improvements, the system can now cover more than 3250 cm-1 (700-900 nm). We have combined this with standard velocity-modulation spectroscopy to measure and analyze 19 ro-vibronic bands of HfF+.;These measurements enabled precision spectroscopy of trapped HfF + for testing time-reversal symmetry. For this experiment, we perform Ramsey spectroscopy between spin states in the metastable 3Delta 1 level to look for a permanent electric dipole moment of the electron with what we believe is the narrowest line observed in a molecular system (Fourier limited with 500 ms of coherence time). The long coherence time is a major advantage of using ions, but there are also some added complexities. We discuss various aspects metastable state preparation, state detection, and spectroscopy in a rotating frame (due to the necessary rotating electric bias field) that were particular challenging. In addition, we discuss limits to the coherence time---in particular, ion-ion collisions---as well as the sensitivity of the current measurements and provide a path towards a new limit on the electric dipole moment of the electron.
机译:本文提出了一系列不同的实验,所有这些实验都试图扩展分子光谱学的功能并实现新的应用。腔增强直接频率梳谱技术(CE-DFCS)的新技术提供了宽带宽,高分辨率和高灵敏度的独特组合,可广泛用于各种应用。 CE-DFCS的先前演示仅限于可见光或近红外光并在有限的带宽内运行:对于许多应用,希望增加光谱覆盖范围并扩展到发生分子的强基本振动模式的中红外光。 CE-DFCS有几个关键要求:提供宽带宽和高分辨率的频率梳源,具有高灵敏度的光学腔,以及能够对通过腔传输的梳谱进行多重检测的检测系统。我们首先讨论梳状光源,重点是非线性光纤频谱扩展的相干特性以及基于光参量振荡器(OPO)的中红外高功率频率梳状光源的开发。为了利用这种新的中红外梳状光谱源,我们还讨论了快速扫描傅立叶变换光谱仪(FTS)的开发。然后,我们讨论来自高度非线性光纤的光谱加宽光的CE-DFCS的首次演示,并将其应用于半导体制造气体中杂质的测量。我们还涵盖了使用中红外OPO和FTS将CE-DFCS扩展到中红外以测量对呼吸分析和大气化学重要的各种气体的ppb水平的工作,并着重介绍了该系统的一些未来应用。对中性分子,宽带离子和高分辨率分子离子光谱的研究对于航天化学非常有用,其中观察到的许多分子都是离子性的,用于研究具有非经典行为的CH5 +等分子,以及用于基本物理学的测试。我们已经开发出一种新技术-频率梳速度调制光谱-这是第一个能够对分子离子进行快速宽带光谱分析的系统。我们展示了在30分钟内记录150 cm-1光谱(由45,000个点组成)的能力,并已使用该系统在800 nm左右的近红外光谱中记录了HfF +的1000 cm-1光谱。经过改进,系统现在可以覆盖超过3250 cm-1(700-900 nm)的范围。我们将其与标准速度调制光谱法相结合,以测量和分析19个HfF +的旋转振动带。这些测量结果使捕获的HfF +的精密光谱学能够测试时间反转对称性。在本实验中,我们在亚稳态3Delta 1能级的自旋态之间进行拉姆西光谱分析,以寻找电子的永久电偶极矩,我们认为这是在分子系统中观察到的最窄线(傅立叶受限于相干时间500 ms )。相干时间长是使用离子的主要优势,但也增加了一些复杂性。我们讨论了旋转框架中的亚稳态状态准备,状态检测和光谱学的各个方面(由于必要的旋转电偏置场),这些方面特别具有挑战性。此外,我们讨论了相干时间的限制-特别是离子-离子碰撞-以及电流测量的灵敏度,并提供了一条通往电子电偶极矩新极限的途径。

著录项

  • 作者

    Cossel, Kevin C.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Physical chemistry.;Optics.;Atomic physics.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 319 p.
  • 总页数 319
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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