Zhao Jing, Wang Jiaxian
The Higher Educational Key Laboratory for Flexible Manufacturing Equipment Integration of Fujian Province, Xiamen Institute of Technology, Xiamen 361021, China.
Key Laboratory of Physical Electronics and Devices of Ministry of Education, School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Nanomaterials (Basel). 2025 Jul 30;15(15):1178. doi: 10.3390/nano15151178.
The unique molecular fingerprint spectral characteristics in the terahertz (THz) band provide distinct advantages for non-destructive and rapid biomolecular detection. However, conventional THz metasurface biosensors still face significant challenges in achieving highly sensitive and precise detection. This study proposes a sensing platform based on quasi-bound states in the continuum (Quasi-BIC), which enhances molecular fingerprint recognition through resonance amplification. We designed a symmetric graphene double-split square ring metasurface structure. By modulating the Fermi level of graphene, this system generated continuously tunable Quasi-BIC resonance peaks across a broad THz spectral range, achieving precise spectral overlap with the characteristic absorption lines of lactose (1.19 THz and 1.37 THz) and tyrosine (0.958 THz). The results demonstrated a remarkable 763-fold enhancement in absorption peak intensity through envelope analysis for analytes with 0.1 μm thickness, compared to conventional bare substrate detection. This terahertz BIC metasurface sensor demonstrates high detection sensitivity, holding significant application value in fields such as biomedical diagnosis, food safety, and pharmaceutical testing.
太赫兹(THz)波段独特的分子指纹光谱特性为生物分子的无损快速检测提供了显著优势。然而,传统的太赫兹超表面生物传感器在实现高灵敏度和精确检测方面仍面临重大挑战。本研究提出了一种基于连续域中的准束缚态(Quasi-BIC)的传感平台,该平台通过共振放大增强分子指纹识别。我们设计了一种对称的石墨烯双裂方环超表面结构。通过调制石墨烯的费米能级,该系统在较宽的太赫兹光谱范围内产生了连续可调的准束缚态共振峰,实现了与乳糖(1.19太赫兹和1.37太赫兹)和酪氨酸(0.958太赫兹)特征吸收线的精确光谱重叠。结果表明,与传统的裸基板检测相比,对于厚度为0.1μm的分析物,通过包络分析吸收峰强度显著增强了763倍。这种太赫兹束缚态超表面传感器具有高检测灵敏度,在生物医学诊断、食品安全和药物检测等领域具有重要的应用价值。