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Hybrid Graphene-Microfiber Waveguide for Chemical Gas Sensing

机译:混合石墨烯-超细纤维波导,用于化学气体传感

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摘要

Graphene has been attracting great interest as the basis of novel photonic devices and sensors due to its many unique optical and electric properties that are quite different from conventional film materials. In this paper, we propose and demonstrate a novel hybrid graphene-microfiber waveguide structure and its application to chemical gas sensing for the first time to our knowledge. As the complex refractive index of the extremely thin graphene film (<1 nm) can be easily modified by chemical gas molecules distributing on its surface, the transverse electric mode surface wave intensity is sensitive to gas concentration. Such an intensity modulation induced by gas molecules can be detected via the coupling of evanescent field between the graphene waveguide and the microfiber. A sensitivity of 0.31 dB/100 ppm and good reversibility are observed experimentally for acetone vapor gas sensing. It is believed that this hybrid waveguide structure could open a new window to realize a variety of graphene-based photonic sensors, for potential applications in the fields of biology, medicine, and chemistry.
机译:石墨烯作为其新颖的光子器件和传感器的基础已引起人们极大的兴趣,这是由于其许多独特的光学和电学性质与常规薄膜材料完全不同。在本文中,我们首次提出并演示了一种新颖的混合石墨烯-微纤维波导结构及其在化学气体传感中的应用。由于极薄的石墨烯薄膜(<1 nm)的复折射率可以通过分布在其表面上的化学气体分子轻易地改变,因此横向电模表面波强度对气体浓度敏感。气体分子引起的这种强度调制可以通过石墨烯波导和微纤维之间的gas逝场耦合来检测。实验上对丙酮蒸气气的检测灵敏度为0.31 dB / 100 ppm,并且具有良好的可逆性。人们相信,这种混合波导结构可以为实现各种基于石墨烯的光子传感器打开一个新的窗口,从而有望在生物学,医学和化学领域中得到潜在的应用。

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