Mazaheri Zahra, Koral Can, Andreone Antonello
Department of Physics "E. Pancini", University of Naples "Federico II", 80126, Naples, Italy.
INFN, Naples Unit, 80126, Naples, Italy.
Sci Rep. 2022 May 5;12(1):7342. doi: 10.1038/s41598-022-10804-w.
We report on the realisation of a customized THz time domain spectroscopic ellipsometer (THz-TDSE) based on fiber-coupled photoconductive antennas, operating in a wide range of incident angles and allowing also standard transmission spectroscopy without any optical realignment. To ensure accurate parameter extraction for a broad range of materials, we developed a fast and effective algorithm-assisted method to calibrate the setup and compensate for the nonideality in the response of the THz system. The procedure allows to minimise errors induced by imperfect response of the antennas and polarizers, imprecise setting of the impinging and receiving angles in the goniometric mechanical arms, and unavoidable mismatches in the THz beam optics. Differently from other calibration methods applied in the literature, our approach compares in time domain the ellipsometric derived electric field s- and p-polarised components at a given angle of incidence with the reconstructed ones, attained by using the complex dielectric function of a known sample. The calibrated response is determined with high precision by setting the system in transmission mode. In order to validate the technique, ellipsometric measurements have been carried out at various angle of incidences on a number of materials both in solid and liquid form, and their data compared with what obtained by conventional THz spectroscopy. Results show that THz-TDSE accompanied with an accurate calibration procedure is an effective technique for material characterization, especially in case of samples with a high absorption rate that are not easily investigated through transmission measurements.
我们报告了一种基于光纤耦合光电导天线的定制太赫兹时域光谱椭偏仪(THz-TDSE)的实现,该椭偏仪可在宽入射角范围内工作,并且无需任何光学重新对准即可进行标准透射光谱测量。为了确保对多种材料进行准确的参数提取,我们开发了一种快速有效的算法辅助方法来校准仪器并补偿太赫兹系统响应中的非理想性。该程序可以将天线和偏振器的不完美响应、测角机械臂中入射角和接收角的不精确设置以及太赫兹光束光学中不可避免的失配所引起的误差降至最低。与文献中应用的其他校准方法不同,我们的方法在时域中将给定入射角下椭偏测量得出的电场s偏振分量和p偏振分量与通过使用已知样品的复介电函数获得的重构分量进行比较。通过将系统设置为透射模式,可以高精度地确定校准响应。为了验证该技术,我们在多种入射角下对多种固态和液态材料进行了椭偏测量,并将其数据与传统太赫兹光谱法获得的数据进行了比较。结果表明,太赫兹时域光谱椭偏仪结合精确的校准程序是一种有效的材料表征技术,特别是对于吸收率高且难以通过透射测量进行研究的样品。