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首页> 外文期刊>Frontiers of optoelectronics in China >Terahertz wave generation from ring-Airy beam induced plasmas and remote detection by terahertz-radiation-enhanced-emission-of-fluorescence: a review
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Terahertz wave generation from ring-Airy beam induced plasmas and remote detection by terahertz-radiation-enhanced-emission-of-fluorescence: a review

机译:环艾里光束诱导等离子体产生太赫兹波并通过太赫兹辐射增强发射荧光进行远程检测:综述

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With the increasing demands for remote spectroscopy in many fields ranging from homeland security to environmental monitoring, terahertz (THz) spectroscopy has drawn a significant amount of attention because of its capability to acquire chemical spectral signatures non-invasively. However, advanced THz remote sensing techniques are obstructed by quite a few factors, such as THz waves being strongly absorbed by water vapor in the ambient air, difficulty to generate intense broadband coherent THz source remotely, and hard to transmit THz waveform information remotely without losing the signal to noise ratio, etc. In this review, after introducing different THz air-photonics techniques to overcome the difficulties of THz remote sensing, we focus mainly on theoretical and experimental methods to improve THz generation and detection performance for the purpose of remote sensing through tailoring the generation and detection media, air-plasma. For the THz generation part, auto-focusing ring-Airy beam was introduced to enhance the THz wave generation yield from two-color laser induced air plasma. By artificially modulated exotic wave packets, it is exhibited that abruptly auto-focusing beam induced air-plasma can give an up to 5.3-time-enhanced THz wave pulse energy compared to normal Gaussian beam induced plasma under the same conditions. At the same time, a red shift on the THz emission spectrum is also observed. A simulation using an interference model to qualitatively describe these behaviors has be developed. For the THz detection part, the results of THz remote sensing at 30 m using THz-radiation-enhanced-emission-of-fluorescence (THz-REEF) technique are demonstrated, which greatly improved from the 10 m demonstration last reported. The THz-REEF technique in the counter-propagation geometry was explored, which is proved to be more practical for stand-off detections than co-propagation geometry. We found that in the counter-propagating geometry the maximum amplitude of the REEF signal is comparable to that in the co-propagating case, whereas the time resolved REEF trace significantly changes. By performing the study with different plasmas, we observed that in the counter-propagating geometry the shape of the REEF trace depends strongly on the plasma length and electron density. A new theoretical model suggesting that the densest volume of the plasma does not contribute to the fluorescence enhancement is proposed to reproduce the experimental measurements. Our results further the understanding of the THz-plasma interaction and highlight the potential of THz-REEF technique in the plasma detection applications.
机译:随着从国土安全到环境监测等许多领域对远程光谱的需求不断增长,太赫兹(THz)光谱由于其无创获取化学光谱特征的能力而备受关注。但是,先进的太赫兹遥感技术受到很多因素的阻碍,例如太赫兹波被周围空气中的水蒸气强烈吸收,难以远程生成强烈的宽带相干太赫兹源,难以远程传输太赫兹波形信息而不会丢失在这篇综述中,在介绍了不同的太赫兹空中光子学​​技术以克服太赫兹遥感的困难之后,我们主要集中在理论和实验方法上,以提高太赫兹的产生和检测性能为目的。通过定制产生和检测介质的空气等离子体。对于太赫兹产生部分,引入了自动聚焦环形艾里光束,以提高由两色激光诱导的空气等离子体产生太赫兹波的产量。通过人工调制的奇异波包,可以证明,在相同条件下,相比于正常的高斯光束感应等离子体,突然自动聚焦的光束感应空气等离子体可以提供高达5.3倍的THz波脉冲能量。同时,还观察到了太赫兹发射光谱的红移。已经开发出使用干扰模型定性描述这些行为的仿真。对于太赫兹检测部分,演示了使用太赫兹辐射增强发射荧光(THz-REEF)技术在30 m处太赫兹遥感的结果,与上次报道的10 m演示相比有了很大改进。探索了在反向传播几何中的THz-REEF技术,事实证明它比常规传播几何学更适用于对位检测。我们发现,在反向传播的几何结构中,REEF信号的最大幅度与在共同传播的情况下相当,而时间分辨的REEF迹线则发生显着变化。通过对不同等离子体进行研究,我们观察到在反向传播的几何结构中,REEF迹线的形状很大程度上取决于等离子体的长度和电子密度。提出了一个新的理论模型,该理论模型建议血浆的最稠密体积不会促进荧光增强,从而重现实验测量结果。我们的结果进一步了解了THz-血浆相互作用,并强调了THz-REEF技术在血浆检测应用中的潜力。

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