Kazanskiy Nikolay L, Khonina Svetlana N, Butt Muhammad A, Kaźmierczak Andrzej, Piramidowicz Ryszard
Samara National Research University, 443086 Samara, Russia.
Institute of RAS-Branch of the FSRC "Crystallography and Photonics" RAS, 443001 Samara, Russia.
Nanomaterials (Basel). 2021 Sep 29;11(10):2551. doi: 10.3390/nano11102551.
A multipurpose plasmonic sensor design based on a metal-insulator-metal (MIM) waveguide is numerically investigated in this paper. The proposed design can be instantaneously employed for biosensing and temperature sensing applications. The sensor consists of two simple resonant cavities having a square and circular shape, with the side coupled to an MIM bus waveguide. For biosensing operation, the analytes can be injected into the square cavity while a thermo-optic polymer is deposited in the circular cavity, which provides a shift in resonance wavelength according to the variation in ambient temperature. Both sensing processes work independently. Each cavity provides a resonance dip at a distinct position in the transmission spectrum of the sensor, which does not obscure the analysis process. Such a simple configuration embedded in the single-chip can potentially provide a sensitivity of 700 nm/RIU and -0.35 nm/°C for biosensing and temperature sensing, respectively. Furthermore, the figure of merit () for the biosensing module and temperature sensing module is around 21.9 and 0.008, respectively. is the ratio between the sensitivity of the device and width of the resonance dip. We suppose that the suggested sensor design can be valuable in twofold ways: (i) in the scenarios where the testing of the biological analytes should be conducted in a controlled temperature environment and (ii) for reducing the influence on ambient temperature fluctuations on refractometric measurements in real-time mode.
本文对一种基于金属-绝缘体-金属(MIM)波导的多功能等离子体传感器设计进行了数值研究。所提出的设计可立即用于生物传感和温度传感应用。该传感器由两个具有方形和圆形形状的简单谐振腔组成,其侧面与MIM总线波导耦合。对于生物传感操作,可将分析物注入方形腔中,同时在圆形腔中沉积热光聚合物,该聚合物会根据环境温度的变化使共振波长发生偏移。两种传感过程相互独立工作。每个腔在传感器的传输光谱中的不同位置提供一个共振凹陷,这不会模糊分析过程。这种嵌入在单芯片中的简单配置可能分别为生物传感和温度传感提供700 nm/RIU和-0.35 nm/°C的灵敏度。此外,生物传感模块和温度传感模块的品质因数分别约为21.9和0.008。品质因数是器件灵敏度与共振凹陷宽度的比值。我们认为所建议的传感器设计在两方面具有价值:(i)在需要在可控温度环境下进行生物分析物测试的场景中;(ii)用于减少实时模式下环境温度波动对折射测量的影响。