Analysis and Design of Refractive Index Biosensors Based on Single Silicon Nanobeam Cavity

Single silicon nanobeam photonic crystal cavity based sensors are systematically analyzed and designed. By using perturbation theory and numerical simulations, both dielectric-mode and air-mode cavities are extensively investigated in terms of sensitivity (S), figure of merit (FOM), detection limit...

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Main Authors: Ping Yu, Huiye Qiu, Wanjun Wang, Ting Hu, Hui Yu, Zhuoyuan Wang, Feiqing Wu, Xiaoqing Jiang, Jianyi Yang
Format: Article
Language:English
Published: IEEE 2016-01-01
Series:IEEE Photonics Journal
Subjects:
Online Access:https://ieeexplore.ieee.org/document/7579554/
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spelling doaj-fbe29d4affb64071b71ed7786712d19d2021-03-29T17:38:09ZengIEEEIEEE Photonics Journal1943-06552016-01-018511010.1109/JPHOT.2016.26145017579554Analysis and Design of Refractive Index Biosensors Based on Single Silicon Nanobeam CavityPing Yu0Huiye Qiu1Wanjun Wang2Ting Hu3Hui Yu4Zhuoyuan Wang5Feiqing Wu6Xiaoqing Jiang7Jianyi Yang8Ningbo Institute of Technology, Zhejiang University, Ningbo, ChinaDepartment of Mechanical and Electrical Engineering, Longyan University, Longyan, ChinaDepartment of Information Science and Electronic Engineering, Zhejiang University, Hangzhou, ChinaSchool of Electrical and Electronic Engineering, Nanyang Technological University, SingaporeDepartment of Information Science and Electronic Engineering, Zhejiang University, Hangzhou, ChinaNingbo Institute of Technology, Zhejiang University, Ningbo, ChinaNingbo Institute of Technology, Zhejiang University, Ningbo, ChinaDepartment of Information Science and Electronic Engineering, Zhejiang University, Hangzhou, ChinaDepartment of Information Science and Electronic Engineering, Zhejiang University, Hangzhou, ChinaSingle silicon nanobeam photonic crystal cavity based sensors are systematically analyzed and designed. By using perturbation theory and numerical simulations, both dielectric-mode and air-mode cavities are extensively investigated in terms of sensitivity (S), figure of merit (FOM), detection limit (DL), footprint size, and coupling scheme. The analytical study reveals a sensitivity limit of 1176 nm/RIU and a maximum figure of merit of 5070 for nanobeam cavity based sensors, due to the absorption of light near 1550 nm wavelength. when water is used as the carrier fluid. Design of high FOM (&gt; 4800) nanobeam cavities is demonstrated with S of 291 and 232 nm/RIU for air modes and dielectric modes, respectively. The calculation results indicate that on a 220-nm-thick-silicon SOI platform, it is possible to design a nanobeam cavity based biosensor with DL on the order of 4 &#x00D7; 10<sup>-6</sup> RIU, insertion loss of -30 dB, and cavity length less than 40a (a is the lattice constant). To approach the absorption bounded DL, the presented design is adequate when analyte absorption dominates the loss, regardless if it is for dielectric modes or air modes. These results would be conducive to clarification of the confusion on the priority of air mode and dielectric mode in designing nanobeam cavities based sensors, as well as recent considerable efforts to maximize Sand FOM.https://ieeexplore.ieee.org/document/7579554/Photonic crystal cavitynanobeam cavityphotonic sensorsensitivitydetection limit.
collection DOAJ
language English
format Article
sources DOAJ
author Ping Yu
Huiye Qiu
Wanjun Wang
Ting Hu
Hui Yu
Zhuoyuan Wang
Feiqing Wu
Xiaoqing Jiang
Jianyi Yang
spellingShingle Ping Yu
Huiye Qiu
Wanjun Wang
Ting Hu
Hui Yu
Zhuoyuan Wang
Feiqing Wu
Xiaoqing Jiang
Jianyi Yang
Analysis and Design of Refractive Index Biosensors Based on Single Silicon Nanobeam Cavity
IEEE Photonics Journal
Photonic crystal cavity
nanobeam cavity
photonic sensor
sensitivity
detection limit.
author_facet Ping Yu
Huiye Qiu
Wanjun Wang
Ting Hu
Hui Yu
Zhuoyuan Wang
Feiqing Wu
Xiaoqing Jiang
Jianyi Yang
author_sort Ping Yu
title Analysis and Design of Refractive Index Biosensors Based on Single Silicon Nanobeam Cavity
title_short Analysis and Design of Refractive Index Biosensors Based on Single Silicon Nanobeam Cavity
title_full Analysis and Design of Refractive Index Biosensors Based on Single Silicon Nanobeam Cavity
title_fullStr Analysis and Design of Refractive Index Biosensors Based on Single Silicon Nanobeam Cavity
title_full_unstemmed Analysis and Design of Refractive Index Biosensors Based on Single Silicon Nanobeam Cavity
title_sort analysis and design of refractive index biosensors based on single silicon nanobeam cavity
publisher IEEE
series IEEE Photonics Journal
issn 1943-0655
publishDate 2016-01-01
description Single silicon nanobeam photonic crystal cavity based sensors are systematically analyzed and designed. By using perturbation theory and numerical simulations, both dielectric-mode and air-mode cavities are extensively investigated in terms of sensitivity (S), figure of merit (FOM), detection limit (DL), footprint size, and coupling scheme. The analytical study reveals a sensitivity limit of 1176 nm/RIU and a maximum figure of merit of 5070 for nanobeam cavity based sensors, due to the absorption of light near 1550 nm wavelength. when water is used as the carrier fluid. Design of high FOM (&gt; 4800) nanobeam cavities is demonstrated with S of 291 and 232 nm/RIU for air modes and dielectric modes, respectively. The calculation results indicate that on a 220-nm-thick-silicon SOI platform, it is possible to design a nanobeam cavity based biosensor with DL on the order of 4 &#x00D7; 10<sup>-6</sup> RIU, insertion loss of -30 dB, and cavity length less than 40a (a is the lattice constant). To approach the absorption bounded DL, the presented design is adequate when analyte absorption dominates the loss, regardless if it is for dielectric modes or air modes. These results would be conducive to clarification of the confusion on the priority of air mode and dielectric mode in designing nanobeam cavities based sensors, as well as recent considerable efforts to maximize Sand FOM.
topic Photonic crystal cavity
nanobeam cavity
photonic sensor
sensitivity
detection limit.
url https://ieeexplore.ieee.org/document/7579554/
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