为太赫兹频率分配ATR鸽棱镜的特性:补充分子动力学模拟

D. Crompton, A. Vickers
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引用次数: 2

摘要

在本文中,我们描述了一个内部衰减全反射(ATR)样品单元,用于台式太赫兹时域系统(THz-TDS)光谱仪。与传统的透射光谱法相比,定制设计的ATR装置具有几个关键优势。固体,液体和粉末样品可以很容易地制备用于分析,并且很容易移除和访问,而无需拆卸样品池。在ATR设置中,传输单元窗口之间的多次反射不再存在。如果需要,可以将棱镜移除并替换为更传统的传输单元,而不会干扰光谱仪的光学和光束路径。用一系列水-异丙醇(IPA)混合物对ATR装置进行了测试,以测量ATR装置的性能和灵敏度。系列混合物的范围为0-100% IPA,增量为10%。ATR单元可以定义每个增量,随着IPA的增加,太赫兹吸光度呈稳定的线性下降。折射率的实部和虚部,因此,介电常数也计算在每个采样间隔。折射率在0.5 ~ 1太赫兹范围内呈线性增加,从纯IPA折射率为1到纯水折射率最大为3。为了进一步理解ATR结果,我们利用OPLS/AA力场对IPA混合物进行了分子动力学模拟。这些模拟产生了一系列轨迹,从每帧的总偶极矩大小计算出自相关傅立叶变换。这给了我们每个ipa -水混合物的光谱密度,它直接与ATR装置实验中看到的太赫兹光谱相比较。这些模拟重复了相同的模式,显示太赫兹吸光度随着IPA溶质的增加而降低。从这些结果,我们得出结论,ATR单元是太赫兹光谱的有效工具。仿真结果与仿真结果吻合,使我们有信心ATR机组的性能符合设计要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assigning the characteristics of an ATR dove prism for use with terahertz frequencies: Supplemented with molecular dynamic simulations
In this paper we characterize an in house attenuated total reflection (ATR) sample cell unit, for use with a table top Terahertz-Time domain system (THz-TDS) spectrometer. The custom designed ATR unit offers several key advantages compared to conventional transmission spectrometry. Solid, liquid and powdered samples can easily be prepared for analysis and are easily removed and accessed without the need of dismantling the sample cell. Multiple reflections between the windows in transmission cells are no longer present with the ATR setup. If required the prism can be removed and replaced with a more traditional transmission cell without interfering with the spectrometers optics and optical beam path. The ATR unit was tested with a series of water-isopropyl alcohol (IPA) mixtures, to measure the performance and sensitivity of the ATR unit. The series of mixtures ranged from 0-100% IPA with increments of 10%. The ATR unit was shown to define each increment, with a steady and linear drop of in THz absorbance with added IPA. The real and imaginary parts of the refractive index and therefore, dielectric constants were also calculated at each sample interval. The refractive index increased linearly at the measured THz range from 0.5 and 1 THz from a refractive index of 1 at pure IPA to a maximum of 3 at pure water. To further our understanding of the ATR results, molecular dynamic simulations of the IPA mixtures were performed using an OPLS/AA force field. These simulations produced a series of trajectories from which the auto correlated Fourier transform was calculated from the total dipole moment magnitude of each frame. This gives us the spectral density of each IPA-water mixture which is directly comparable to the THz spectrum experimentally seen with the ATR unit. These simulations repeated the same pattern showing a decrease in THz absorbance with increasing IPA solute. From these results, we conclude the ATR unit is an effective tool in terahertz spectroscopy. The agreement with the simulated results gives us confidence the ATR unit is performing as designed.
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