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Free space broadband intense THz sources and applications

机译:自由空间宽带密集太赫兹源和应用

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Extreme nonlinear interactions of THz electromagnetic fields with matter are the next frontier in nonlinear optics. However, reaching this frontier in free space is limited by the existing lack of appropriate powerful THz sources. Here we demonstrate both theoretically and experimentally the realization of a novel THz source with high peak power performance based on two-color filamentation of femtosecond mid-infrared laser pulses at 3.9 μm. Our theory predicts that under this scheme sub-cycle THz pulses with multi-millijoule energies and record conversion efficiencies can be produced. Besides, we elucidate the origin of this high efficiency, which is made up of several factors, including a novel mechanism where the harmonics produced by the mid-infrared pulses strongly contribute to the field symmetry breaking and enhance the THz generation. In our experiments we verify the theoretical predictions by demonstrating ultrashort sub-cycle THz pulses with sub-millijoule energy and THz conversion efficiency of 2.36%, resulting in THz field amplitudes above 100 MV cm~(-1). Moreover, we show that these intense THz fields can drive nonlinear effects in bulk semiconductors (ZnSe and ZnTe) in free space and at room temperature. Our numerical simulations indicate that the observed THz yield can be significantly upscaled by further optimizing the experimental setup leading to even higher field strengths. Such intense THz pulses enable extreme field science, including into other, relativistic phenomena.
机译:太赫兹电磁场与物质的极端非线性相互作用是非线性光学的下一个前沿领域。但是,由于缺乏适当的强大THz信号源,在自由空间中达到这一领域受到了限制。在这里,我们在理论上和实验上都演示了基于3.9μm的飞秒中红外激光脉冲的双色细丝化,实现具有高峰值功率性能的新型THz光源的实现。我们的理论预测,在该方案下,可以产生具有多毫焦耳能量和记录转换效率的亚周期太赫兹脉冲。此外,我们阐明了这种高效率的起源,它是由多种因素组成的,其中包括一种新颖的机制,其中中红外脉冲产生的谐波强烈地破坏了场对称性并增强了THz的产生。在我们的实验中,我们通过演示超短亚周期THz脉冲(亚毫焦耳能量和2.36%的THz转换效率),从而产生了高于100 MV cm〜(-1)的THz场振幅,来验证理论预测。此外,我们证明了这些强太赫兹场可以在自由空间和室温下驱动块状半导体(ZnSe和ZnTe)中的非线性效应。我们的数值模拟表明,可以通过进一步优化实验设置来显着提高观测到的THz产量,从而获得更高的场强。如此强的太赫兹脉冲使极端的领域科学成为可能,包括进入其他相对论现象。

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