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基于选择性涂覆光子晶体光纤内表面等离子体共振的温度传感器。

Temperature sensor based on surface plasmon resonance within selectively coated photonic crystal fiber.

作者信息

Peng Yang, Hou Jing, Huang Zhihe, Lu Qisheng

机构信息

College of Optoelectronic Science and Engineering, National University of Defense Technology, Changsha, Hunan Province, China.

出版信息

Appl Opt. 2012 Sep 10;51(26):6361-7. doi: 10.1364/ao.51.006361.

Abstract

We demonstrate a temperature sensor based on surface plasmon resonances supported by photonic crystal fibers (PCFs). Within the PCF, to enhance the sensitivity of the sensor, the air holes of the second layer are filled with a large thermo-optic coefficient liquid and some of those air holes are selectively coated with metal. Temperature variations will induce changes of coupling efficiencies between the fundamental core mode and the plasmonic mode, thus leading to different loss spectra that will be recorded. In this paper, variations of the dielectric constants of all components, including the metal, the filled liquid, and the fused silica, are considered. We conduct numerical calculations to analyze the mode profile and evaluate the power loss, demonstrating a temperature sensitivity as high as 720 pm/°C.

摘要

我们展示了一种基于光子晶体光纤(PCF)支持的表面等离子体共振的温度传感器。在光子晶体光纤内,为了提高传感器的灵敏度,第二层的气孔填充有大的热光系数液体,并且其中一些气孔被选择性地涂覆金属。温度变化将引起基模与等离子体模之间耦合效率的变化,从而导致不同的损耗光谱被记录下来。在本文中,考虑了所有组件(包括金属、填充液体和熔融石英)的介电常数变化。我们进行数值计算以分析模式分布并评估功率损耗,证明温度灵敏度高达720 pm/°C。

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