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基于通过OH1晶体进行频率上转换检测的太赫兹波段大动态范围光谱测量

Large Dynamic Range Spectral Measurement in Terahertz Region Based on Frequency Up-Conversion Detection via OH1 Crystal.

作者信息

Yuan Jiasheng, Guo Quanxin, Zhang Xingyu, Liu Naichang, Yin Xiaoqin, Ming Na, Guo Liyuan, Jiao Binzhe, Wang Kaiyu, Fan Shuzhen

机构信息

Key Laboratory of Laser & Infrared System (Shandong University), Ministry of Education, Qingdao 266237, China.

Shandong Provincial Key Laboratory of Laser Technology and Application, School of Information Science and Engineering, Shandong University, Qingdao 266237, China.

出版信息

Sensors (Basel). 2024 Sep 26;24(19):6245. doi: 10.3390/s24196245.

Abstract

Terahertz spectroscopy systems, which integrate terahertz sources and detectors, have important applications in many fields such as materials science and security checking. Based on highly sensitive frequency up-conversion detection, large dynamic range spectral measurements in a terahertz region are reported. Our system realized the detection sensitivity at a 10 aJ level with a 2-(3-(4-hydroxystyryl)-5,5-dime-thylcyclohex-2-enylidene) malononitrile (OH1) crystal and a dynamic range up to seven orders. Based on this system, we verified the validity of the spectral measurement with tests which were conducted on monohydrate glucose, anhydrous glucose and mixed tablet samples with a thickness of 0.8 mm in 1~3 THz, respectively. Also, a mini coppery elbow tube with an inner diameter of 1 mm was used for the transmission of a terahertz wave to simulate some strip biological tissue samples. By allowing terahertz to transmit through this tube filled with 0.5 g glucose powder, we successfully obtained the absorption spectrum with a minimum transmittance at the absorption peak in the order of 10.

摘要

集成太赫兹源和探测器的太赫兹光谱系统在材料科学和安检等许多领域都有重要应用。基于高灵敏度的频率上转换检测,报道了在太赫兹区域的大动态范围光谱测量。我们的系统利用2-(3-(4-羟基苯乙烯基)-5,5-二甲基环己-2-烯基)丙二腈(OH1)晶体实现了10阿焦耳水平的检测灵敏度,动态范围高达七个数量级。基于该系统,我们分别对厚度为0.8毫米的一水合葡萄糖、无水葡萄糖和混合片剂样品在1~3太赫兹频段进行测试,验证了光谱测量的有效性。此外,还使用了内径为1毫米的微型铜弯管来传输太赫兹波,以模拟一些条状生物组织样品。通过让太赫兹波透过这个装有0.5克葡萄糖粉末的管子,我们成功获得了吸收光谱,吸收峰处的最小透过率约为10。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e031/11479019/5440d67bfd14/sensors-24-06245-g001.jpg

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