Zheng Jian, Katsuragawa Masayuki
Department of Engineering Science, University of Electro-Communications.
1] Department of Engineering Science, University of Electro-Communications [2] JST ERATO-IOS 1-5-1, Chofugaoka, Chofu, Tokyo 182-8585, Japan.
Sci Rep. 2015 Mar 9;5:8874. doi: 10.1038/srep08874.
Nonlinear optical processes are governed by the relative-phase relationships among the relevant electromagnetic fields in these processes. In this Report, we describe the physics of arbitrary manipulation of Raman-resonant four-wave-mixing process by artificial control of relative phases. As a typical example, we show freely designable optical-frequency conversions to extreme spectral regions, mid-infrared and vacuum-ultraviolet, with near-unity quantum efficiencies. Furthermore, we show that such optical-frequency conversions can be realized by using a surprisingly simple technology where transparent plates are placed in a nonlinear optical medium and their positions and thicknesses are adjusted precisely. In a numerical simulation assuming practically applicable parameters in detail, we demonstrate a single-frequency tunable laser that covers the whole vacuum-ultraviolet spectral range of 120 to 200 nm.
非线性光学过程由这些过程中相关电磁场之间的相对相位关系所支配。在本报告中,我们描述了通过人工控制相对相位对拉曼共振四波混频过程进行任意操纵的物理原理。作为一个典型例子,我们展示了可自由设计的光频转换到极端光谱区域,即中红外和真空紫外,且量子效率接近1。此外,我们表明这种光频转换可以通过一种惊人简单的技术来实现,即在非线性光学介质中放置透明板,并精确调整它们的位置和厚度。在详细假设实际适用参数的数值模拟中,我们展示了一种覆盖120至200纳米整个真空紫外光谱范围的单频可调谐激光器。