利用表面特异性太赫兹光谱探测钙钛矿氧化物界面

Yudan Su, Jiaming Le, J. Ma, Long Cheng, Yuxuan Wei, X. Zhai, C. Tian
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引用次数: 0

摘要

钙钛矿氧化物中的表面/界面物质在许多新兴的物理现象和化学过程中起着至关重要的作用。由于太赫兹区域的本征能量较低,由于缺乏可行的实验技术,对埋藏界面上的这些物质仍然知之甚少。在这里,我们证明了振动共振和二维电子气体在界面上可以用表面比非线性光谱在太赫兹范围内表征。该技术使用脉冲内差频混合(DFM)过程,该过程只允许在具有反演对称性的介质表面/界面进行。亚单层灵敏度可以使用最先进的探测方案从表面/界面发射太赫兹。作为证明,在LaAlO3/SrTiO3或Al2O3/ SrTiO3界面上成功观察到二维电子气体的德鲁德类非线性响应。同时,得到了SrTiO3在2.8 THz下的界面振动谱,并在界面区被表面场极化。对应的表面/界面电势是srtio3基界面超导和光催化的关键参数,现在可以通过偏振声子谱的光学定量分析来确定。我们的方法揭示了在太赫兹区共振频率的界面物质,为理解复合氧化物的物理性质提供了更多的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Probing Interface of Perovskite Oxide Using Surface-specific Terahertz Spectroscopy
The surface/interface species in perovskite oxides play an essential role in many novel emergent physical phenomena and chemical processes. With low eigen-energy in the terahertz region, such species at buried interfaces remain poorly understood due to the lack of feasible experimental techniques. Here, we show that vibrational resonances and two-dimensional electron gas at the interface can be characterized using surface-specific nonlinear spectroscopy in the terahertz range. This technique uses intra-pulse difference frequency mixing (DFM) process, which is allowed only at surface/interface of a medium with inversion symmetry. Sub-monolayer sensitivity can be achieved using the state-of-the-art detection scheme for the terahertz emission from surface/interface. As a demonstration, Drude-like nonlinear response from the two-dimensional electron gas emerging at LaAlO3/SrTiO3 or Al2O3/ SrTiO3 interface was successfully observed. Meanwhile, the interfacial vibrational spectrum of the ferroelectric soft mode of SrTiO3 at 2.8 THz was also obtained that was polarized by the surface field in the interfacial region. The corresponding surface/interface potential, which is a key parameter for SrTiO3-based interface superconductivity and photocatalysis, can now be determined optically via quantitative analysis on the polarized phonon spectrum. The interfacial species with resonant frequencies in the THz region revealed by our method provide more insights into the understanding of physical properties of complex oxides.
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CiteScore
11.40
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