TY - JOUR
T1 - Electric Field Dropping Effect Enhanced Extraordinary Sensitivity of THz Electromagnetically Induced Transparency Metamaterial
AU - Liu, Xiaofeng
AU - Sun, Jiajia
AU - Shi, Zongqian
AU - Xiu, Shixin
AU - Cui, Yuqing
AU - Hou, Yushan
AU - Li, Ruohan
AU - Wang, Nan
AU - Zhang, Liuyang
AU - Li, Xiaoling
AU - Wu, Kai
N1 - Publisher Copyright:
© 2001-2012 IEEE.
PY - 2024/3/15
Y1 - 2024/3/15
N2 - Metamaterial sensors have unique advantages, including nonlabeling and nondestructive capabilities in the terahertz (THz) regions. However, the low sensitivity, limited by the poor light-matter interaction, still restricts the implementation of the metamaterial sensors for practical applications. In this article, we construct a novel THz electromagnetically induced transparency (EIT)-like metamaterial using two resonators with different metal thicknesses (undulated metamaterial), resulting in a coupled mode with electric field dropping distribution. This electric field dropping distribution leads to a remarkable enhancement of the electric field in the space, where the analyte is present. The transmission amplitude of the transparency window shows obvious growth with the undulated surface design because of the enhanced coupling between the two resonant modes. The simulation results are also investigated through coupled harmonic oscillator model. Furthermore, the sensitivity of the metamaterial sensor with undulated characteristics is 550 GHz/RIU, surpassing that of the metamaterial sensor with uniform metal thickness by a factor of 1.57 due to the strengthened light-matter interaction. In addition, an experimental demonstration of the enhanced sensing performance and transmission amplitude growth of the undulated metamaterial is conducted, which shows good consistency with the simulations. The THz metamaterial, consisting of different resonators with varying metal thickness, can provide an efficient approach for designing biosensors with ultrasensitivity and the designing method offers an opportunity for the realization of further enhanced sensitivity without changing the pattern of metamaterial.
AB - Metamaterial sensors have unique advantages, including nonlabeling and nondestructive capabilities in the terahertz (THz) regions. However, the low sensitivity, limited by the poor light-matter interaction, still restricts the implementation of the metamaterial sensors for practical applications. In this article, we construct a novel THz electromagnetically induced transparency (EIT)-like metamaterial using two resonators with different metal thicknesses (undulated metamaterial), resulting in a coupled mode with electric field dropping distribution. This electric field dropping distribution leads to a remarkable enhancement of the electric field in the space, where the analyte is present. The transmission amplitude of the transparency window shows obvious growth with the undulated surface design because of the enhanced coupling between the two resonant modes. The simulation results are also investigated through coupled harmonic oscillator model. Furthermore, the sensitivity of the metamaterial sensor with undulated characteristics is 550 GHz/RIU, surpassing that of the metamaterial sensor with uniform metal thickness by a factor of 1.57 due to the strengthened light-matter interaction. In addition, an experimental demonstration of the enhanced sensing performance and transmission amplitude growth of the undulated metamaterial is conducted, which shows good consistency with the simulations. The THz metamaterial, consisting of different resonators with varying metal thickness, can provide an efficient approach for designing biosensors with ultrasensitivity and the designing method offers an opportunity for the realization of further enhanced sensitivity without changing the pattern of metamaterial.
KW - Biosensors
KW - electric field dropping effect
KW - electromagnetically induced transparency (EIT)
KW - high sensitivity
KW - terahertz (THz) metamaterial sensor
UR - https://www.scopus.com/pages/publications/85184329252
U2 - 10.1109/JSEN.2024.3358920
DO - 10.1109/JSEN.2024.3358920
M3 - 文章
AN - SCOPUS:85184329252
SN - 1530-437X
VL - 24
SP - 7807
EP - 7815
JO - IEEE Sensors Journal
JF - IEEE Sensors Journal
IS - 6
ER -