Skip navigation
  • 中文
  • English

DSpace CRIS

  • DSpace logo
  • Home
  • Research Outputs
  • Researchers
  • Organizations
  • Projects
  • Explore by
    • Research Outputs
    • Researchers
    • Organizations
    • Projects
  • Communities & Collections
  • SDGs
  • Sign in
  • 中文
  • English
  1. National Taiwan Ocean University Research Hub
  2. 工學院
  3. 機械與機電工程學系
Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/19109
Title: Hybrid Graphene-Based Photonic-Plasmonic Biochemical Sensor with a Photonic and Acoustic Cavity Structure
Authors: Yang, Chan-Shan
Cheng, Yi-Sheng
Hsu, Young-Chou
Chung, Yi-Cheng
Hung, Jing-Ting
Liu, Chien-Hao
Hsu, Jin-Chen
Cheng-Ying Chen 
Yang, Chii-Rong
Li, Yu-Tai
Huang, Nan-Nong 
Lin, Tzy-Rong 
Keywords: graphene;plasmon;photonic cavity;phoxonic crystal;biochemical sensor
Issue Date: 1-Oct-2021
Publisher: MDPI
Journal Volume: 11
Journal Issue: 10
Source: CRYSTALS
Abstract: 
In this study, we propose a biochemical sensor that features a photonic cavity integrated with graphene. The tunable hybrid plasmonic-photonic sensor can detect the molecular fingerprints of biochemicals with a small sample volume. The stacking sequence of the device is "ITO grating/graphene/TiO2/Au/Si substrate ", which composes a photonic band gap structure. A defect is created within the ITO gratings to form a resonant cavity. The plasmonic-photonic energy can be confined in the cavity to enhance the interaction between light and the analyte deposited in the cavity. The finite element simulation results indicated that the current sensor exhibits very high values in resonance shift and sensitivity. Moreover, the resonance spectrum with a broad resonance linewidth can identify the molecular vibration bands, which was exemplified by the fingerprint detections of protein and the chemical compound CBP. The sensor possesses an electrical tunability by including a graphene layer, which allowed us to tune the effective refractive index of the cavity to increase the sensor's sensing performance. In addition, our device admits a phononic bandgap as well, which was exploited to sense the mechanical properties of two particular dried proteins based on the simplified elastic material model instead of using the more realistic viscoelastic model. The dual examinations of the optical and mechanical properties of analytes from a phoxonic sensor can improve the selectivity in analyte detections.

URI: http://scholars.ntou.edu.tw/handle/123456789/19109
DOI: 10.3390/cryst11101175
Appears in Collections:機械與機電工程學系

Show full item record

WEB OF SCIENCETM
Citations

1
Last Week
0
Last month
0
checked on Jun 27, 2023

Page view(s)

167
Last Week
0
Last month
0
checked on Jun 30, 2025

Google ScholarTM

Check

Altmetric

Altmetric

Related Items in TAIR


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

Explore by
  • Communities & Collections
  • Research Outputs
  • Researchers
  • Organizations
  • Projects
Build with DSpace-CRIS - Extension maintained and optimized by Logo 4SCIENCE Feedback