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Compact nanohole/disk array-based plasmonic fiber-optic end-facet sensing probe: batch preparation and performance determination

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【作者】 何怡瑾梁瑜章魏欣然杜雨琪申岚岚赵婧媛杨成方蔚瑞彭伟

【Author】 Yijin He;Yuzhang Liang;Xinran Wei;Yuqi Du;Lanlan Shen;Jingyuan Zhao;Cheng Yang;Yurui Fang;Wei Peng;School of Physics, Dalian University of Technology;Department of Clinical Laboratory, Central Hospital of Dalian University of Technology;School of Chemistry, Dalian University of Technology;

【通讯作者】 梁瑜章;

【机构】 School of Physics, Dalian University of TechnologyDepartment of Clinical Laboratory, Central Hospital of Dalian University of TechnologySchool of Chemistry, Dalian University of Technology

【摘要】 A gold nanohole/disk array-based plasmonic fiber end-facet sensing probe is proposed and demonstrated experimentally,where the hybrid plasmon mode on the top surface used for sensing is excited by the cooperative effect of the near-field coupling between the nanohole and the nanodisk, as well as the localized surface plasmon of the nanodisk. The high-quality integration of the nanohole/disk array on the fiber end facet is achieved by combining nanoimprint lithography on a planar substrate with fiber ultraviolet (UV)-curable adhesive transfer techniques. As a result, the fabricated fiber probe experimentally exhibits a moderately high bulk refractive index sensitivity of ~196.91 nm/RIU and excellent surface sensitivity.Furthermore, the specific identification and determination of protein molecules verify their sensitivity analysis capabilities for future bioassays. This work provides a feasible plasmonic excitation strategy and enables batch-manufactured technology for nanostructure-based fiber probes to break through the current bottlenecks in biosensing applications.

【Abstract】 A gold nanohole/disk array-based plasmonic fiber end-facet sensing probe is proposed and demonstrated experimentally,where the hybrid plasmon mode on the top surface used for sensing is excited by the cooperative effect of the near-field coupling between the nanohole and the nanodisk, as well as the localized surface plasmon of the nanodisk. The high-quality integration of the nanohole/disk array on the fiber end facet is achieved by combining nanoimprint lithography on a planar substrate with fiber ultraviolet (UV)-curable adhesive transfer techniques. As a result, the fabricated fiber probe experimentally exhibits a moderately high bulk refractive index sensitivity of ~196.91 nm/RIU and excellent surface sensitivity.Furthermore, the specific identification and determination of protein molecules verify their sensitivity analysis capabilities for future bioassays. This work provides a feasible plasmonic excitation strategy and enables batch-manufactured technology for nanostructure-based fiber probes to break through the current bottlenecks in biosensing applications.

【基金】 supported by the National Natural Science Foundation of China (Nos. 12274052 and 62171076);the Natural Science Foundation of Liaoning Province (No. 2022MS-134);the Fundamental Research Funds for the Central Universities (Nos. DUT24ZD203 and DUT23BK063)
  • 【文献出处】 Chinese Optics Letters ,中国光学快报(英文版) , 编辑部邮箱 ,2025年06期
  • 【分类号】O53;TP212
  • 【下载频次】1
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