Sinelnikov Artem N, Melnikov Anatoly R, Getmanov Yaroslav V, Kolomeec Darya A, Kalneus Evgeny V, Fedin Matvey V, Veber Sergey L
Nesmeyanov Institute of Organoelement Compounds of the Russian Academy of Sciences, 28, Vavilova Str., Moscow 119334, Russia.
Moscow Center for Advanced Studies, 20, Kulakova Str., Moscow 123592, Russia.
Sensors (Basel). 2024 Sep 6;24(17):5808. doi: 10.3390/s24175808.
The application of terahertz (THz) science in industrial technology and scientific research requires efficient THz detectors. Such detectors should be able to operate under various external conditions and conform to existing geometric constraints in the required application. Pyroelectric THz detectors are among the best candidates. This is due to their versatility, outstanding performance, ease of fabrication, and robustness. In this paper, we propose a compact pyroelectric detector based on a bioriented poled polyvinylidene difluoride film coated with sputtered metal electrodes for in situ absorption measurement at cryogenic temperature. The detector design was optimized for the registration system of the electron paramagnetic resonance (EPR) endstation of the Novosibirsk Free Electron Laser facility. Measurements of the detector response to pulsed THz radiation at different temperatures and electrode materials showed that the response varies with both the temperature and the type of electrode material used. The maximum signal level corresponds to the temperature range of 10-40 K, in which the pyroelectric coefficient of the PVDF film also has a maximum value. Among the three coatings studied, namely indium tin oxide (ITO), Au, and Cu/Ni, the latter has the highest increase in sensitivity at low temperature. The possibility of using the detectors for in situ absorption measurement was exemplified using two typical molecular spin systems, which exhibited a transparency of 20-30% at 76.9 cm and 5 K. Such measurements, carried out directly in the cryostat with the main recording system and sample fully configured, allow precise control of the THz radiation parameters at the EPR endstation.
太赫兹(THz)科学在工业技术和科学研究中的应用需要高效的太赫兹探测器。此类探测器应能够在各种外部条件下运行,并符合所需应用中的现有几何约束。热释电太赫兹探测器是最佳候选者之一。这是由于它们的多功能性、出色的性能、易于制造以及坚固性。在本文中,我们提出了一种基于双取向极化聚偏二氟乙烯薄膜并涂覆溅射金属电极的紧凑型热释电探测器,用于在低温下进行原位吸收测量。该探测器设计针对新西伯利亚自由电子激光设施的电子顺磁共振(EPR)终端站的记录系统进行了优化。在不同温度和电极材料下对探测器对脉冲太赫兹辐射的响应进行测量,结果表明响应随温度和所使用的电极材料类型而变化。最大信号电平对应于10 - 40 K的温度范围,在此温度范围内PVDF薄膜的热释电系数也具有最大值。在所研究的三种涂层中,即氧化铟锡(ITO)、金和铜/镍,后者在低温下灵敏度增加最高。使用两种典型的分子自旋系统举例说明了使用探测器进行原位吸收测量的可能性,这两种系统在76.9 cm和5 K时的透明度为20 - 30%。这种在低温恒温器中直接进行的测量,主记录系统和样品已完全配置好,可在EPR终端站精确控制太赫兹辐射参数。