Ahmed Syed Z, Hasan Mehedi, Kim Kyungtae, Kim Sangsik
Department of Electrical and Computer Engineering, Texas Tech University, Lubbock, TX, 79409, USA.
School of Electrical Engineering, Korea Advanced Institute of Science and Technology, Daejeon, 34141, South Korea.
Nano Converg. 2024 Sep 28;11(1):39. doi: 10.1186/s40580-024-00446-1.
Silicon photonic index sensors have received significant attention for label-free bio and gas-sensing applications, offering cost-effective and scalable solutions. Here, we introduce an ultra-compact silicon photonic refractive index sensor that leverages zero-crosstalk singularity responses enabled by subwavelength gratings. The subwavelength gratings are precisely engineered to achieve an anisotropic perturbation-led zero-crosstalk, resulting in a single transmission dip singularity in the spectrum that is independent of device length. The sensor is optimized for the transverse magnetic mode operation, where the subwavelength gratings are arranged perpendicular to the propagation direction to support a leaky-like mode and maximize the evanescent field interaction with the analyte space. Experimental results demonstrate a high wavelength sensitivity of - 410 nm/RIU and an intensity sensitivity of 395 dB/RIU, with a compact device footprint of approximately 82.8 μm. Distinct from other resonant and interferometric sensors, our approach provides an FSR-free single-dip spectral response on a small device footprint, overcoming common challenges faced by traditional sensors, such as signal/phase ambiguity, sensitivity fading, limited detection range, and the necessity for large device footprints. This makes our sensor ideal for simplified intensity interrogation. The proposed sensor holds promise for a range of on-chip refractive index sensing applications, from gas to biochemical detection, representing a significant step towards efficient and miniaturized photonic sensing solutions.
硅基光子折射率传感器在无标记生物传感和气体传感应用中受到了广泛关注,提供了经济高效且可扩展的解决方案。在此,我们介绍一种超紧凑型硅基光子折射率传感器,它利用亚波长光栅实现的零串扰奇异响应。亚波长光栅经过精确设计,以实现各向异性微扰导致的零串扰,从而在光谱中产生一个与器件长度无关的单一传输凹陷奇异点。该传感器针对横向磁模操作进行了优化,其中亚波长光栅垂直于传播方向排列,以支持类似泄漏的模式,并最大化与分析物空间的倏逝场相互作用。实验结果表明,该传感器具有 -410 nm/RIU 的高波长灵敏度和 395 dB/RIU 的强度灵敏度,器件占地面积紧凑,约为 82.8μm。与其他谐振和干涉传感器不同,我们的方法在小尺寸器件上提供了无自由光谱范围的单凹陷光谱响应,克服了传统传感器面临的常见挑战,如信号/相位模糊、灵敏度衰减、检测范围有限以及需要大尺寸器件等问题。这使得我们的传感器非常适合简化的强度检测。所提出的传感器在从气体检测到生化检测的一系列片上折射率传感应用中具有广阔前景,代表了朝着高效和小型化光子传感解决方案迈出的重要一步。