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Enhancement of optics-to-THz conversion efficiency by metallic slot waveguides

机译:通过金属槽波导提高光学到THZ转换效率

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A metallic slot waveguide, with a dielectric strip embedded within, is investigated for the purpose of enhancing the optics-to-THz conversion efficiency using the difference-frequency generation (DFG) process. To describe the frequency conversion process in such lossy waveguides, a fully-vectorial coupled-mode theory is developed. Using the coupled-mode theory, we outline the basic theoretical requirements for efficient frequency conversion, which include the needs to achieve large coupling coefficients, phase matching, and low propagation loss for both the optical and THz waves. Following these requirements, a metallic waveguide is designed by considering the trade-off between modal confinement and propagation loss. Our numerical calculation shows that the conversion efficiency in these waveguide structures can be more than one order of magnitude larger than what has been achieved using dielectric waveguides. Based on the distinct impact of the slot width on the optical and THz modal dispersion, we propose a two-step method to realize the phase matching for general pump wavelengths.
机译:为了利用差频生成(DFG)处理,研究了嵌入在内部的金属槽波导,其中嵌入内部的内部电介质条带进行了增强光学到THz转换效率。为了描述这种有损波导中的频率转换过程,开发了全缝向耦合模式理论。使用耦合模式理论,我们概述了有效频率转换的基本理论要求,包括实现大耦合系数,相位匹配和光波波的低传播损耗的需要。在这些要求之后,通过考虑模态限制和传播损失之间的权衡来设计金属波导。我们的数值计算表明,这些波导结构中的转换效率可以比使用介电波导的实现大于一个大的数量级。基于槽宽对光学和THz模态分散的不同影响,我们提出了一种两步方法,实现了一般泵波长的相位匹配。

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