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使用具有可旋转偏振的光束对各向异性材料进行太赫兹光谱分析。

Terahertz spectroscopy of anisotropic materials using beams with rotatable polarization.

作者信息

Mosley C D W, Failla M, Prabhakaran D, Lloyd-Hughes J

机构信息

Department of Physics, University of Warwick, Gibbet Hill Road, Coventry, CV4 7AL, UK.

Department of Physics, Clarendon Laboratory, University of Oxford, Parks Road, Oxford, OX1 3PU, UK.

出版信息

Sci Rep. 2017 Sep 26;7(1):12337. doi: 10.1038/s41598-017-12568-0.

Abstract

We introduce a polarization-resolved terahertz time-domain spectrometer with a broadband (0.3-2.5 THz), rotatable THz polarization state, and which exhibits minimal change in the electric field amplitude and polarization state upon rotation. This was achieved by rotating an interdigitated photoconductive emitter, and by detecting the orthogonal components of the generated THz pulse via electro-optic sampling. The high precision (<0.1°) and accuracy (<1.0°) of this approach is beneficial for the study of anisotropic materials without rotating the sample, which can be impractical, for instance for samples held in a cryostat. The versatility of this method was demonstrated by studying the anisotropic THz optical properties of uniaxial and biaxial oxide crystals. For uniaxial ZnO and LaAlO, which have minimal THz absorption across the measurement bandwidth, the orientations of the eigenmodes of propagation were conveniently identified as the orientation angles that produced a transmitted THz pulse with zero ellipticity, and the birefringence was quantified. In CuO, a multiferroic with improper ferroelectricity, the anisotropic THz absorption created by an electromagnon was investigated, mapping its selection rule precisely. For this biaxial crystal, which has phonon and electromagnon absorption, the polarization eigenvectors exhibited chromatic dispersion, as a result of the monoclinic crystal structure and the frequency-dependent complex refractive index.

摘要

我们介绍了一种偏振分辨太赫兹时域光谱仪,它具有宽带(0.3 - 2.5太赫兹)、可旋转的太赫兹偏振态,并且在旋转时电场幅度和偏振态的变化极小。这是通过旋转叉指式光电导发射器,并通过电光采样检测所产生太赫兹脉冲的正交分量来实现的。这种方法的高精度(<0.1°)和高准确度(<1.0°)有利于在不旋转样品的情况下研究各向异性材料,例如对于置于低温恒温器中的样品,旋转样品可能不切实际。通过研究单轴和双轴氧化物晶体的各向异性太赫兹光学性质,证明了该方法的通用性。对于在整个测量带宽内太赫兹吸收极小的单轴ZnO和LaAlO,传播本征模的取向可方便地确定为产生椭圆率为零的透射太赫兹脉冲的取向角,并对双折射进行了量化。在具有非本征铁电性的多铁性材料CuO中,研究了由电磁子产生的各向异性太赫兹吸收,精确地绘制了其选择规则。对于这种具有声子和电磁子吸收的双轴晶体,由于单斜晶体结构和频率相关的复折射率,偏振本征向量呈现出色散现象。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76b5/5615066/1f1d563f6bd7/41598_2017_12568_Fig1_HTML.jpg

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