Key Laboratory of Optoelectronics Technology, Ministry of Education, Beijing University of Technology, Beijing, 100124, China.
School of Opto-electronic Engineering, Zaozhuang University, Zaozhuang, 277160, China.
Adv Mater. 2024 Mar;36(11):e2310493. doi: 10.1002/adma.202310493. Epub 2023 Dec 14.
The concept of a quasi-bound state in a continuum (QBIC) has garnered significant attention in various fields such as sensing, communication, and optical switching. Within metasurfaces, QBICs offer a reliable platform that enables sensing capabilities through potent interactions between local electric fields and matter. Herein, a novel terahertz (THz) biosensor based on the integration of QBIC with graphene is reported, which enables multidimensional detection. The proposed biosensor is distinctive because of its ability to discern concentrations of ethanol and N-methylpyrrolidone in a wide range from 100% to 0%, by monitoring the changes in the resonance intensity and maximum wavelet coefficient. This approach demonstrates an excellent linear fit, which ensures robust quantitative analysis. The remarkable sensitivity of our biosensor enables it to detect minute changes in low-concentration solutions, with the lowest detection concentration value (LDCV) of 0.21 pg mL . 2D wavelet coefficient intensity cards are effectively constructed through continuous wavelet transforms, which presents a more accurate approach for determining the concentration of the solution. Ultimately, the novel sensing platform offers a host of advantages, including heightened sensitivity and reusability. This pioneering approach establishes a new avenue for liquid-based terahertz biosensing.
准束缚态在连续体中的概念(QBIC)在传感、通信和光开关等各个领域引起了广泛关注。在超表面中,QBIC 提供了一个可靠的平台,通过局部电场和物质之间的强相互作用实现传感功能。本文报道了一种基于 QBIC 与石墨烯集成的新型太赫兹(THz)生物传感器,实现了多维检测。由于能够通过监测共振强度和最大小波系数的变化来分辨乙醇和 N-甲基吡咯烷酮在 100%到 0%的宽浓度范围内的浓度,该生物传感器具有独特性。该方法表现出出色的线性拟合度,确保了稳健的定量分析。我们的生物传感器具有很高的灵敏度,能够检测低浓度溶液中的微小变化,最低检测浓度值(LDCV)为 0.21 pg mL-1。通过连续小波变换有效地构建了 2D 小波系数强度卡,为确定溶液浓度提供了更准确的方法。最终,新型传感平台具有高灵敏度和可重复使用等优点。这种开创性的方法为基于液体的太赫兹生物传感开辟了新途径。