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Ultrabright continuously tunable terahertz-wave generation at room temperature

机译:室温下超亮连续可调太赫兹波的产生

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摘要

The hottest frequency region in terms of research currently lies in the ‘frequency gap' region between microwaves and infrared: terahertz waves. Although new methods for generating terahertz radiation have been developed, most sources cannot generate high-brightness terahertz beams. Here we demonstrate the generation of ultrabright terahertz waves (brightness ~0.2 GW/sr·cm2, brightness temperature of ~1018 K, peak power of >50 kW) using parametric wavelength conversion in a nonlinear crystal; this is brighter than many specialized sources such as far-infrared free-electron lasers (~1016 K, ~2 kW). We revealed novel parametric wavelength conversion using stimulated Raman scattering in LiNbO3 without stimulated Brillouin scattering using recently-developed microchip laser. Furthermore, nonlinear up-conversion techniques allow the intense terahertz waves to be visualized and their frequency determined. These results are very promising for extending applied research into the terahertz region, and we expect that this source will open up new research fields such as nonlinear optics in the terahertz region.
机译:就研究而言,目前最热的频率区域位于微波与红外之间的“频率间隙”区域:太赫兹波。尽管已经开发出用于产生太赫兹辐射的新方法,但是大多数光源无法产生高亮度太赫兹束。在这里,我们使用以下方法演示了超亮太赫兹波的产生(亮度〜0.2 GW / sr·cm 2 ,亮度温度约10 18 K,峰值功率> 50 kW)非线性晶体中的参数波长转换;这比许多专门的光源(例如,远红外自由电子激光器(〜10 16 K,〜2 kW))要亮。我们揭示了使用LiNbO3中的受激拉曼散射而不使用最近开发的微芯片激光器进行受激布里渊散射的新型参数波长转换。此外,非线性上变频技术可以使强烈的太赫兹波可视化并确定其频率。这些结果对于将应用研究扩展到太赫兹地区非常有希望,我们希望这一资源将开拓新的研究领域,例如太赫兹地区的非线性光学。

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