Hearne Thomas S, Abdelkader Khedaoui Omar, Hays Brian M, Guillaume Théo, Sims Ian R
Univ. Rennes, CNRS, IPR (Institut de Physique de Rennes) - UMR 6251, F-35000 Rennes, France.
J Chem Phys. 2020 Aug 28;153(8):084201. doi: 10.1063/5.0017978.
A novel chirped-pulse Fourier transform microwave (CP-FTMW) spectrometer has been constructed to cover the Ka-band (26.5 GHz-40 GHz) for use in the CRESUCHIRP project, which aims to study the branching ratios of reactions at low temperatures using the chirped-pulse in uniform flow technique. The design takes advantage of recent developments in radio-frequency components, notably, high-frequency, high-power solid-state amplifiers. The spectrometer had a flatness of 5.5 dB across the spectral range, produced harmonic signals below -20 dBc, and the recorded signal scaled well to 6 × 10 averages. The new spectrometer was used to determine pressure broadening coefficients with a helium collider at room temperature for three molecules relevant to astrochemistry, applying the Voigt function to fit the magnitude of the Fourier-transformed data in the frequency domain. The pressure broadening coefficient for carbonyl sulfide was determined to be (2.45 ± 0.02) MHz mbar at room temperature, which agreed well with previous measurements. Pressure broadening coefficients were also determined for multiple transitions of vinyl cyanide and benzonitrile. Additionally, the spectrometer was coupled with a cold, uniform flow from a Laval nozzle. The spectrum of vinyl cyanide was recorded in the flow, and its rotational temperature was determined to be (24 ± 11) K. This temperature agreed with a prediction of the composite temperature of the system through simulations of the experimental environment coupled with calculations of the solution to the optical Bloch equations. These results pave the way for future quantitative studies in low-temperature and high-pressure environments using CP-FTMW spectroscopy.
为了用于CRESU CHIRP项目,已构建了一种新型啁啾脉冲傅里叶变换微波(CP-FTMW)光谱仪,该项目旨在利用均匀流技术中的啁啾脉冲研究低温下反应的分支比。该设计利用了射频组件的最新发展,特别是高频、高功率固态放大器。该光谱仪在整个光谱范围内的平坦度为5.5 dB,产生低于-20 dBc的谐波信号,并且记录的信号在6×10次平均下缩放良好。使用新的光谱仪在室温下用氦碰撞器确定了与天体化学相关的三种分子的压力展宽系数,应用Voigt函数在频域中拟合傅里叶变换数据的幅度。在室温下,羰基硫的压力展宽系数确定为(2.45±0.02)MHz mbar,这与先前的测量结果非常吻合。还确定了丙烯腈和苯甲腈多个跃迁的压力展宽系数。此外,该光谱仪与来自拉瓦尔喷嘴的冷均匀流耦合。记录了流动中丙烯腈的光谱,其转动温度确定为(24±11)K。通过对实验环境的模拟以及对光学布洛赫方程解的计算,该温度与系统复合温度的预测结果一致。这些结果为未来使用CP-FTMW光谱学在低温和高压环境下进行定量研究铺平了道路。