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Investigation of ultra-broadband terahertz time-domain spectroscopy with terahertz wave gas photonics
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作者 Xiaofei LU Xi-Cheng ZHANG 《Frontiers of Optoelectronics》 EI CSCD 2014年第2期121-155,共35页
Recently, air plasma, produced by focusing an intense laser beam to ionize atoms or molecules, has been demonstrated to be a promising source of broadband terahertz waves. However, simultaneous broadband and coherent ... Recently, air plasma, produced by focusing an intense laser beam to ionize atoms or molecules, has been demonstrated to be a promising source of broadband terahertz waves. However, simultaneous broadband and coherent detection of such broadband terahertz waves is still challenging. Electroptical sampling and photoconductive antennas are the typical approaches for terahertz wave detection. The bandwidth of these detection methods is limited by the phonon resonance or carrier's lifetime. Unlike solid-state detectors, gaseous sensors have several unique features, such as no phonon resonance, less dispersion, no Fabry-Perot effect, and a continuous renewable nature. The aim of this article is to review the development of a broadband terahertz time-domain spectrometer, which has both a gaseous emitter and sensor mainly based on author's recent investigation. This spectrometer features high efficiency, perceptive sensitivity, broad bandwidth, adequate signal-to-noise ratio, sufficient dynamic range, and controllable polarization. The detection of terahertz waves with ambient air has been realized through a third order nonlinear optical process: detecting the second harmonic photon that is produced by mixing one terahertz photon with two fundamental photons. In this review, a systematic investigation of the mechanism of broadband terahertz wave detection was presented first. The dependence of the detection efficiency on probe pulse energy, bias field strength, gas pressure and third order nonlinear susceptibility of gases were experimentally demonstrated with selected gases. Detailed discussions of phase matching and Gouy phase shift were presented by considering the focused condition of Gaussian beams. Furthermore, the bandwidth dependence on probe pulse duration was also demonstrated. Over 240 times enhancement of dynamic range had been accomplished with n-hexane vapor compared to conventional air sensor. Moreover, with sub-20 fs laser pulses delivered from a hollow fiber pulse compressor, an ultra-broad spectrum covering from 0.3 to 70 THz was also showed. In addition, a balanced detection scheme using a polarization dependent geometry was developed by author to improve signal-to-noise ratio and dynamic range of conventional terahertz air-biased-coherent-detection (ABCD) systems. Utilizing the tensor property of third order nonlinear susceptibility, second harmonic pulses with two orthogonal polarizations was detected by two separated photomultiplier tubes (PMTs). The differential signal from these two PMTs offers a realistic method to reduce correlated laser fluctuation, which circumvents signal-to-noise ratio and dynamic range of conventional terahertz ABCD systems. A factor of two improvement of signal-to-noise ratio was experimentally demonstrated. This paper also introduces a unique approach to directly produce a broadband elliptically polarized terahertz wave from laser-induced plasma with a pair of double helix electrodes. The theoretical and experimental results demonstrated that velocity mismatch between excitation laser pulses and generated terahertz waves plays a key role in the properties of the elliptically polarized terahertz waves and confirmed that the far-field terahertz emission pattern is associated with a coherent process. The results give insight into the important influence of propagation effects on terahertz wave polarization control and complete the mechanism of terahertz wave generation from laserinduced plasma. This review provides a critical understanding of broadband terahertz time-domain spectroscopy (THz-TDS) and introduces further guidance for scientific applications of terahertz wave gas photonics. 展开更多
关键词 terahertz spectroscopy terahertz detection broadband gas sensor
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超宽带太赫兹时域光谱探测技术研究进展 被引量:9
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作者 董家蒙 彭晓昱 +4 位作者 马晓辉 刘毅 魏东山 崔洪亮 杜春雷 《光谱学与光谱分析》 SCIE EI CAS CSCD 北大核心 2016年第5期1277-1283,共7页
太赫兹时域光谱(THz time-domain spectroscopy,THz-TDS)技术是一种非常有效的相干探测技术,具有信噪比高,探测带宽,可在室温下工作,可进行时间分辨测量等特点,广泛应用于材料、化学、生物、安检等领域。较早时期的THz-TDS系统受限于太... 太赫兹时域光谱(THz time-domain spectroscopy,THz-TDS)技术是一种非常有效的相干探测技术,具有信噪比高,探测带宽,可在室温下工作,可进行时间分辨测量等特点,广泛应用于材料、化学、生物、安检等领域。较早时期的THz-TDS系统受限于太赫兹辐射源的带宽和光谱探测手段,测量范围有限(<5THz),较高频段的光谱信息无法得到。为了进一步扩大太赫兹时域光谱探测技术的应用范围,迫切需要发展超宽带(≥10THz)的太赫兹时域光谱探测技术。本文回顾了太赫兹时域光谱探测技术的发展进程,综述了实现超宽带太赫兹时域光谱探测的主要技术方法,展示了不同测量方法的典型实验方案,同时总结了不同探测方法的优缺点,并追踪了主要研究小组的前沿成果以及最新的应用进展。 展开更多
关键词 太赫兹光谱 太赫兹探测 超宽带
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太赫兹宽谱聚合物波导及其传感应用(英文) 被引量:1
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作者 刘婧 肖鸣飞 +3 位作者 沈京玲 张波 张巍 张存林 《红外与毫米波学报》 SCIE EI CAS CSCD 北大核心 2016年第5期525-528,533,共5页
利用太赫兹时域光谱系统对三种反谐振波导的太赫兹谱进行了研究,这三种波导分别是PMMA管型波导,PMMA自支撑结构波导和SiO_2管型波导.该研究验证了三种波导的太赫兹传输基于反谐振理论,并在实验上实现了PMMA自支撑结构波导超过2 THz的宽... 利用太赫兹时域光谱系统对三种反谐振波导的太赫兹谱进行了研究,这三种波导分别是PMMA管型波导,PMMA自支撑结构波导和SiO_2管型波导.该研究验证了三种波导的太赫兹传输基于反谐振理论,并在实验上实现了PMMA自支撑结构波导超过2 THz的宽光谱传输.同时,对基于反谐振原理的太赫兹物质传感进行了理论和实验分析,为物质探测提供了一种可行的手段. 展开更多
关键词 聚合物波导 光纤传感器 太赫兹光谱 宽谱传输 反谐振原理
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空气等离子体探测太赫兹超宽谱实验研究 被引量:2
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作者 赫君 牧凯军 +3 位作者 杨华 侯德亭 马胜灿 石晓燕 《激光与光电子学进展》 CSCD 北大核心 2013年第10期198-202,共5页
超宽谱探测技术对于高分辨率的太赫兹吸收光谱测量以及太赫兹科学研究和应用发展等方面具有重要意义。利用空气等离子体实现了太赫兹超宽谱的测量,并对该探测机制进行了系统的实验研究,利用该探测系统测量了两种炸药奥克托金(HMX)和太胺... 超宽谱探测技术对于高分辨率的太赫兹吸收光谱测量以及太赫兹科学研究和应用发展等方面具有重要意义。利用空气等离子体实现了太赫兹超宽谱的测量,并对该探测机制进行了系统的实验研究,利用该探测系统测量了两种炸药奥克托金(HMX)和太胺(PETN)的太赫兹超宽带吸收谱。结果表明太赫兹频谱宽度会随着探测光能量或偏置电场的增加而展宽,随着探测脉冲脉宽的增大而变窄,且利用空气等离子体产生与探测的超宽谱测量在低频区与傅里叶变换红外(FTIR)光谱术有很好的吻合。 展开更多
关键词 光谱学 太赫兹 空气等离子体 相干探测 超宽谱 光谱测量
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基于太赫兹时域光谱技术比例法解调氨气浓度的研究 被引量:4
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作者 何全华 贾大功 +3 位作者 张红霞 李泉 韩家广 张以谟 《中国激光》 EI CAS CSCD 北大核心 2013年第9期229-233,共5页
太赫兹时域光谱(THz-TDS)技术因具有动态范围大、灵敏度和信噪比高等优点在气体检测领域中日益受到重视,然而检测系统内水对太赫兹波的强烈吸收会对气体解调结果产生严重影响。在常温常压、检测系统内有水气存在的情况下利用THz-TDS技... 太赫兹时域光谱(THz-TDS)技术因具有动态范围大、灵敏度和信噪比高等优点在气体检测领域中日益受到重视,然而检测系统内水对太赫兹波的强烈吸收会对气体解调结果产生严重影响。在常温常压、检测系统内有水气存在的情况下利用THz-TDS技术对不同浓度的氨气进行定量检测,并提出一种比例法浓度解调方法降低了水气对氨气浓度解调的影响。为了验证提出算法的有效性,与直接差分法和湿度补偿法两种浓度解调方法进行了比较。结果表明,当氨气与太赫兹波的作用光程为96 mm时,利用比例法可以使气体检测灵敏度提高为33.0mg/m3,浓度反演误差控制在48.2mg/m3以内,相比直接差分法和湿度补偿法浓度反演误差降低达84.6%和77.4%。 展开更多
关键词 传感器 气体定量检测 比例法浓度解调 太赫兹时域光谱技术 氨气
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