Radiation tolerant humidity sensors based on nano-scale TiO2-coated LPGs for high-energy physics applications

G. Berruti, M. Consales, A. Borriello, M. Giordano, S. Buontempo, G. Breglio, A. Makovec, P. Petagna, A. Cusano
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Abstract

This contribution deals with a feasibility analysis for the development of radiation tolerant fiber optic humidity sensors based on long period grating (LPG) technology to be applied in high-energy physics (HEP) experiments currently running at the European Organization for Nuclear Research (CERN). Here we propose a high-sensitivity LPG sensor coated with a finely tuned titanium dioxide (TiO2) thin layer (~100 nm thick) for relative humidity (RH) monitoring in the humidity range [0-75]%RH and in the temperature range [-10°C, 25]°C. Experimental results demonstrate the very high RH sensitivities of the proposed device (up to 1.4 nm/%RH at low humidity). The TiO2-coated LPG sensor radiation tolerance is also investigated up to 1Mrad γ-ionizing radiation dose. Collected results demonstrate the strong potentialities of the proposed technology in light of its future exploitation in HEP applications.
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高能物理应用中基于纳米级二氧化钛涂层lpg的耐辐射湿度传感器
这篇文章涉及开发基于长周期光栅(LPG)技术的耐辐射光纤湿度传感器的可行性分析,该传感器将应用于目前在欧洲核子研究组织(CERN)进行的高能物理(HEP)实验。在这里,我们提出了一种高灵敏度的LPG传感器,该传感器表面涂有精细调谐的二氧化钛(TiO2)薄层(~100 nm厚),用于在湿度范围[0-75]%RH和温度范围[-10°C, 25]°C的相对湿度(RH)监测。实验结果表明,该装置具有非常高的相对湿度灵敏度(在低湿度下可达1.4 nm/%RH)。研究了tio2包覆LPG传感器在1Mrad γ电离辐射剂量下的辐射耐受性。收集的结果表明,鉴于其在HEP应用中的未来开发,所提出的技术具有强大的潜力。
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