Cu Duy Thanh, Wu Hong-Wei, Chen Hung-Pin, Su Li-Chen, Kuo Chien-Cheng
Thin Film Technology Center, Department of Optics and Photonics, National Central University, 300, Chung Da Rd., Chung Li, Taoyuan 32001, Taiwan.
National Applied Research Laboratories, Taiwan Instrument Research Institute, No. 20. R&D Rd. VI, Hsinchu Science Park, Hsinchu 30076, Taiwan.
Sensors (Basel). 2024 Feb 1;24(3):960. doi: 10.3390/s24030960.
Guided-mode resonance (GMR) gratings have emerged as a promising sensing technology, with a growing number of applications in diverse fields. This study aimed to identify the optimal design parameters of a simple-to-fabricate and high-performance one-dimensional GMR grating. The structural parameters of the GMR grating were optimized, and a high-refractive-index thin film was simulated on the grating surface, resulting in efficient confinement of the electric field energy within the waveguide. Numerical simulations demonstrated that the optimized GMR grating exhibited remarkable sensitivity (252 nm/RIU) and an extremely narrow full width at half maximum (2 × 10 nm), resulting in an ultra-high figure of merit (839,666) at an incident angle of 50°. This performance is several orders of magnitude higher than that of conventional GMR sensors. To broaden the scope of the study and to make it more relevant to practical applications, simulations were also conducted at incident angles of 60° and 70°. This holistic approach sought to develop a comprehensive understanding of the performance of the GMR-based sensor under diverse operational conditions.
导模共振(GMR)光栅已成为一种很有前景的传感技术,在各个领域的应用越来越多。本研究旨在确定一种易于制造且高性能的一维GMR光栅的最佳设计参数。对GMR光栅的结构参数进行了优化,并在光栅表面模拟了高折射率薄膜,从而有效地将电场能量限制在波导内。数值模拟表明,优化后的GMR光栅具有显著的灵敏度(252 nm/RIU)和极窄的半高宽(2×10 nm),在入射角为50°时具有超高的品质因数(839,666)。这一性能比传统GMR传感器高出几个数量级。为了拓宽研究范围并使其更符合实际应用,还在入射角为60°和70°时进行了模拟。这种整体方法旨在全面了解基于GMR的传感器在不同工作条件下的性能。