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首页> 外文期刊>The Journal of Chemical Physics >Infrared emission spectroscopy of NH: Comparison of a cryogenic echelle spectrograph with a Fourier transform spectrometer
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Infrared emission spectroscopy of NH: Comparison of a cryogenic echelle spectrograph with a Fourier transform spectrometer

机译:NH的红外发射光谱:低温埃希勒光谱仪与傅立叶变换光谱仪的比较

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The high-resolution emission spectrum of NH has been observed in the near infrared using a Fourier transform spectrometer (FTS) and a cryogenic echelle spectrograph (called Phoenix) at the National Solar Observatory at Kitt Peak. By using a large format InSb array detector, the newly constructed Phoenix is calculated to offer a large increase in sensitivity over a Fourier transform spectrometer for measurements near 5 #mu#m (2000 cm~(-1). In order to test the performance of Phoenix, we recorded vibration-rotation emission spectra of the free-radical NH. The infrared bands of NH were produced in a microwave discharge of a mixture of NH_3 and He. The rotational structure of five bands, 1-0, 2-1, 3-2, 4-3, and 5-4 in the 2200-3500 cm~(-1) region has been measured using two FTS spectra. An analysis of these bands combined with the previous electronic, vibration-rotation, and pure rotation measurements provides improved molecular constants for the ground electronic state. In particular, we have extended the range of measured J values so that the new constants are suitable for predicting line positions in high-temperature sources such as stellar atmospheres and flames. A comparison of the Phoenix spectra with the FTS spectra confirms the higher sensitivity of the Phoenix spectrometer. The relative advantages and disadvantages of instruments like Phoenix are discussed. Although designed for astronomical work, cryogenic echelle spectrographs have applications in the ultrasensitive detection of molecules in chemical physics.
机译:在基特峰国家太阳台,使用傅立叶变换光谱仪(FTS)和低温埃希勒光谱仪(称为Phoenix)在近红外中观察到了NH的高分辨率发射光谱。通过使用大型InSb阵列检测器,计算出的新型Phoenix传感器在傅里叶变换光谱仪上的灵敏度大大提高,可用于5#mu#m(2000 cm〜(-1)附近的测量。我们记录了自由基NH的振动-旋转发射光谱.NH的红外波段是在NH_3和He的混合物的微波放电中产生的。五个波段的旋转结构为1-0、2-1利用两个FTS光谱测量了2200-3500 cm〜(-1)区域中的3-2、4-3和5-4,并结合先前的电子,振动旋转和纯净度对这些波段进行了分析。旋转测量为基态电子状态提供了改进的分子常数,特别是,我们扩展了测量到的J值的范围,以使新的常数适合于预测高温源(例如,恒星大气和火焰)中的线位置。 FTS的凤凰光谱光谱证实了Phoenix光谱仪的更高灵敏度。讨论了诸如Phoenix之类的乐器的相对优缺点。尽管是为天文学工作而设计的,但低温阶梯波谱仪却在化学物理学中对分子的超灵敏检测中得到了应用。

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