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Femtosecond coherent anti-Stokes Raman spectroscopy for chemical identification and detection.

机译:飞秒相干反斯托克斯拉曼光谱法用于化学鉴定和检测。

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摘要

This thesis presents the application of femtosecond coherent anti-Stokes Raman scattering (fs-CARS) technique, and one of its recent improvement, femtosecond adaptive spectroscopic techniques for CARS (FAST CARS), for the detection and identification of chemicals and substances. The fs-CARS technique replies on temporally delaying the probe pulse to eliminate the unwanted four-wave mixing (FWM) background signal. The intense femtosecond pulses excite the molecule into vibrational modes and create coherence between the Raman level and the ground level. This coherence enhances the interaction between the probe pulse and the molecule, and significantly increases the anti-Stokes signal.; In this work, fs-CARS is first investigated for chemical solution identification. Special attention is addressed to the specificity of the technique. It is shown that the Fourier transformation of the time-resolved CARS trace provides spectral characteristic information of the molecule. The femtosecond adaptive pulse shaping technique, when applied to the Stokes pulse, confirms that the transform-limited pulses are optimal for coherence preparation. A variation of the fs-CARS system, which uses a photonic crystal fiber (PCF) to generate the Stokes and probe pulses, eliminates the need for a regenerative Ti:sapphire amplifier and significantly reduces the system cost and complexity.; Although it is a powerful high-precision spectroscopic tool, the fs-CARS is difficult to apply to targets with rough surfaces, such as samples in powder form or substances such as anthrax spores. The scattering from the surface reduces the CARS signal, but increases the FWM background. The novel FAST CARS technique is demonstrated to significantly increase the CARS/FWM ratio. The use of optimized probe pulse together with infrared pump and Stokes pulses suppresses the FWM signal and increases the CARS signal. The spectral signature of anthrax spores can be extracted in as fast as 50 ms, and real-time identification of anthrax spores in 1 second is achieved.; Finally, I present my research work on the application of quantum well intermixing (QWI) technique to asymmetric twin waveguide (ATG) lasers. The QWI technique effectively shifts the absorption band of the active material within the taper region, and reduces the threshold current of the laser by ∼18%.
机译:本文介绍了飞秒相干反斯托克斯拉曼散射技术(fs-CARS)的应用,以及飞思卡尔的飞秒自适应光谱技术(FAST CARS)的最新改进之一,用于化学物质的检测和识别。 fs-CARS技术依靠暂时延迟探测脉冲​​来消除不需要的四波混频(FWM)背景信号。飞秒的强烈脉冲将分子激发成振动模式,并在拉曼能级和地能级之间产生相干性。这种相干性增强了探针脉冲与分子之间的相互作用,并显着增加了反斯托克斯信号。在这项工作中,首先研究了fs-CARS用于化学溶液识别。特别注意该技术的特殊性。结果表明,时间分辨CARS迹线的傅立叶变换提供了分子的光谱特征信息。飞秒自适应脉冲整形技术应用于斯托克斯脉冲时,证实了变换受限的脉冲对于相干准备是最佳的。 fs-CARS系统的一种变体,它使用光子晶体光纤(PCF)来产生斯托克斯和探测脉冲,因此不需要再生Ti:蓝宝石放大器,并显着降低了系统成本和复杂性。尽管fs-CARS是功能强大的高精度光谱仪,但很难将其应用于具有粗糙表面的目标,例如粉末状样品或炭疽孢子等物质。来自表面的散射会减少CARS信号,但会增加FWM背景。事实证明,新颖的FAST CARS技术可显着提高CARS / FWM比。与红外泵浦和斯托克斯脉冲一起使用优化的探测脉冲会抑制FWM信号并增加CARS信号。炭疽菌孢子的光谱特征可以在50毫秒内快速提取,并在1秒内实现了实时鉴定。最后,我介绍了我在量子阱混合(QWI)技术在不对称双波导(ATG)激光器上的应用研究工作。 QWI技术有效地改变了锥形区内活性材料的吸收带,并使激光的阈值电流降低了约18%。

著录项

  • 作者

    Huang, Yu.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Engineering Electronics and Electrical.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 168 p.
  • 总页数 168
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;光学;
  • 关键词

  • 入库时间 2022-08-17 11:39:09

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