首页> 外文会议>Technologies for Optical Countermeasures II; Femtosecond Phenomena II; and Passive Millimetre-Wave and Terahertz Imaging II >Mid-infrared absorption spectroscopy of methane across a 14.4THz spectral range using a broadband femtosecond optical parametric oscillator based on aperiodically poled lithium niobate
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Mid-infrared absorption spectroscopy of methane across a 14.4THz spectral range using a broadband femtosecond optical parametric oscillator based on aperiodically poled lithium niobate

机译:使用基于非周期性极化铌酸锂的宽带飞秒光学参量振荡器,在14.4THz光谱范围内对甲烷进行中红外吸收光谱

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Conventionally optical parametric oscillators (OPOs) have been used in high-resolution absorption-spectroscopy as narrow-band tuneable sources where the measurement resolution is determined by the OPO output linewidth, rather than the wavelength resolution of the detector. In contrast, the absorption spectroscopy of gases and other media has for many years been carried out using instruments such as Fourier-transform infrared (FTIR) spectrometers or high-resolution diffraction-grating-based tuneable monochromators. These techniques commonly utilise broadband thermal sources with highly-divergent illumination beams limiting their use in remote sensing or fibre delivery applications. The work presented here reports a new approach to FTIR spectroscopy based around a novel Tirsapphire pumped, signal-resonant OPO that uses a 10mm crystal of aperiodically-poled lithium niobate (APPLN) as the gain medium producing an idler output covering a 3.2-3.85 μm tuning range with a typical full-width-half-maximum bandwidth of 85 nm. Methane was used to demonstrate the technique since the OPO tuning range almost completely covers the strongest mid-infrared absorption lines of methane from 3.0 -3.7 μm (limited only by the available resonator optics). A double-beam Michelson interferometer was built around the OPO idler beam using a helium-neon laser as the second beam to self-calibrate each trace. Course tuning of the OPO resulted in the measurement of absorption data across the 3.2-3.85 μm tuning range using methane held at pressures ranging from 2000mbar down to 25mbar. A maximum resolution of around 1cm~(-1) was achieved using a simple rapidly scanning mirror assembly indicating that with further development this approach could yield very high-resolution measurements.
机译:常规地,光学参量振荡器(OPO)已在高分辨率吸收光谱学中用作窄带可调谐源,其中测量分辨率由OPO输出线宽而不是检测器的波长分辨率确定。相反,使用诸如傅立叶变换红外(FTIR)光谱仪或基于高分辨率衍射光栅的可调谐单色仪之类的仪器进行气体和其他介质的吸收光谱已经很多年了。这些技术通常利用宽带热源和高度发散的照明光束来限制其在遥感或光纤传输应用中的使用。本文介绍的工作报告了一种基于新型Tirsapphire抽运,信号共振OPO的FTIR光谱新方法,该OPO使用10mm非周期性极化铌酸锂(APPLN)晶体作为增益介质,产生的惰轮输出覆盖3.2-3.85μm调谐范围,典型的半峰最大带宽为85 nm。由于OPO调谐范围几乎完全覆盖了3.0 -3.7μm的甲烷的最强中红外吸收线(仅受可用的谐振器光学器件限制),因此使用甲烷来演示该技术。在氦氧氖激光器作为第二光束围绕OPO空转光束的周围建立了双光束迈克尔逊干涉仪,以对每条迹线进行自校准。 OPO的过程调谐使用保持在2000mbar至25mbar范围内的甲烷压力,测量了3.2-3.85μm调谐范围内的吸收数据。使用简单的快速扫描镜组件可实现约1cm〜(-1)的最大分辨率,这表明通过进一步开发,该方法可以产生非常高分辨率的测量结果。

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