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Terahertz Biosensor Engineering Based on Quasi-BIC Metasurface with Ultrasensitive Detection

Authors :
Jun Peng
Xian Lin
Xiaona Yan
Xin Yan
Xiaofei Hu
Haiyun Yao
Lanju Liang
Guohong Ma
Source :
Nanomaterials, Vol 14, Iss 9, p 799 (2024)
Publication Year :
2024
Publisher :
MDPI AG, 2024.

Abstract

Terahertz (THz) sensors have attracted great attention in the biological field due to their nondestructive and contact-free biochemical samples. Recently, the concept of a quasi-bound state in the continuum (QBIC) has gained significant attention in designing biosensors with ultrahigh sensitivity. QBIC-based metasurfaces (MSs) achieve excellent performance in various applications, including sensing, optical switching, and laser, providing a reliable platform for biomaterial sensors with terahertz radiation. In this study, a structure-engineered THz MS consisting of a “double C” array has been designed, in which an asymmetry parameter α is introduced into the structure by changing the length of one subunit; the Q-factor of the QBIC device can be optimized by engineering the asymmetry parameter α. Theoretical calculation with coupling equations can well reproduce the THz transmission spectra of the designed THz QBIC MS obtained from the numerical simulation. Experimentally, we adopt an MS with α = 0.44 for testing arginine molecules. The experimental results show that different concentrations of arginine molecules lead to significant transmission changes near QBIC resonant frequencies, and the amplitude change is shown to be 16 times higher than that of the classical dipole resonance. The direct limit of detection for arginine molecules on the QBIC MS reaches 0.36 ng/mL. This work provides a new way to realize rapid, accurate, and nondestructive sensing of trace molecules and has potential application in biomaterial detection.

Details

Language :
English
ISSN :
20794991
Volume :
14
Issue :
9
Database :
Directory of Open Access Journals
Journal :
Nanomaterials
Publication Type :
Academic Journal
Accession number :
edsdoj.7b418a47d64e9b86df93a3f60324de
Document Type :
article
Full Text :
https://doi.org/10.3390/nano14090799