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电解质溶液的太赫兹透射特性研究
引用本文:钱坤,白志晨,吴蕊,王佳慧,苏波,文毅伟,张存林. 电解质溶液的太赫兹透射特性研究[J]. 光谱学与光谱分析, 2021, 41(7): 2018-2022. DOI: 10.3964/j.issn.1000-0593(2021)07-2018-05
作者姓名:钱坤  白志晨  吴蕊  王佳慧  苏波  文毅伟  张存林
作者单位:太赫兹波谱与成像北京市重点实验室,太赫兹光电子学教育部重点实验室,北京成像技术高精尖创新中心,首都师范大学物理系,北京 100048
基金项目:国家自然科学基金项目(61575131)资助
摘    要:许多生物大分子的振动和转动能级都在太赫兹波段,且太赫兹波具有光子能量低,峰值功率高的特点,因此用太赫兹技术进行检测,能够从很大程度上保证生物分子不被破坏.然而,大部分的生物分子只有在水溶液中才能保持其生物活性,且水是极性分子,对太赫兹波有强烈的吸收,因此使用常规的太赫兹技术检测水溶液中生物样品的特性存在一定困难.设计了...

关 键 词:太赫兹  微流控芯片  电解质  氢键  透射强度
收稿时间:2020-06-23

Terahertz Transmission Characteristics of Electrolyte Solution
QIAN Kun,BAI Zhi-chen,WU Rui,WANG Jia-hui,SU Bo,WEN Yi-wei,ZHANG Cun-lin. Terahertz Transmission Characteristics of Electrolyte Solution[J]. Spectroscopy and Spectral Analysis, 2021, 41(7): 2018-2022. DOI: 10.3964/j.issn.1000-0593(2021)07-2018-05
Authors:QIAN Kun  BAI Zhi-chen  WU Rui  WANG Jia-hui  SU Bo  WEN Yi-wei  ZHANG Cun-lin
Affiliation:Beijing Key Laboratory for Terahertz Spectroscopy and Imaging; Key Laboatory of Terahertz Optoelectronics, Ministry of Education; Beijing Advanced Innovation Center for Imaging Theory and Technology, Department of Physics, Capital Normal University, Beijing 100048, China
Abstract:The vibration and rotational energy levels of many biomacromolecules are in the terahertz band, and the terahertz wave has low photon energy and high peak power. Therefore, detection with terahertz technology can ensure the biological molecules are not destroyed to a large extent. However, most of the biomolecules can maintain their biological activity only in an aqueous solution, and water is a polar molecule, which has strong absorption of terahertz wave, so it is not easy to use conventional terahertz technology to detect the characteristics of biological samples in an aqueous solution. In this paper, a terahertz microfluidic chip with a sandwich structure is designed, including substrate, cover and microchannel layers. The substrate and cover are made of COC and PMMA. COC material has high transparency to terahertz wave and transparent to visible light. It is ideal for making a terahertz microfluidic chips, but it is expensive and hard to obtain. To reduce the amount of COC, the COC is embedded in the PMMA of the substrate and the cover to ensure that the terahertz wave can pass through the COC. The diameter of COC is 5 mm, the thickness is the same as that of PMMA material, both of which are 2 mm, aligned with the center of the microchannel. A strong adhesive double-sided adhesive with a thickness of 50 μm is selected as the microchannel layer, and the center of the double-sided adhesive is hollowed out as the microchannel, with a length of 3 cm and a width of 4 mm. The THz microfluidic chip is composed of substrate, cover and microchannel. The THz detection area is 4 mm in diameter. The combination of microfluidic technology and terahertz technology reduces the consumption of samples, shortens the distance between terahertz wave and samples, and provides the possibility of detecting liquid samples. It is found that the strong absorption of THz wave by water is mainly due to the hydrogen bond in water, while the electrolyte solution will affect the hydrogen bond in water. In this paper, the electrolyte solutions were prepared with different potassium chloride concentrations, potassium sulfate, copper chloride and copper sulfate solutions, and their terahertz transmission spectra were studied by terahertz microfluidic technology. The results show that THz’s transmission intensity of THz of the four electrolyte solutions is lower than that of pure deionized water, but the experimental phenomena are different. The transmission intensity of THz of copper chloride solution increases with the increase of concentration, while potassium chloride, potassium sulfate and copper sulfate solution decreases with the increase of concentration.
Keywords:Terahertz  Microfluidic chip  Electrolyte  Hydrogen bond  Transmission strength  
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