Fully integrated optical sensor system with intensity interrogation

G. Voronkov, A.G. Zakoyan, Vladislav Ivanov, A. Voronkova, I. Stepanov, Ellizaveta Grakhova, V. Lyubopytov, R. Kutluyarov
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Abstract

Introduction: Today sensor systems based on integrated photonics devices are the most important branch of embedded information and control systems for various functions. The output characteristics of a sensor system are significantly determined by the efficiency of the interrogator. The intensity interrogator based on a microring resonator can provide a high scanning rate and sensitivity that meets the requirements of a wide range of applications. Purpose: To develop an effective sensor system composed of a refractometric sensor and an interrogator located on the same photonic integrated circuit for marker-free determination of the concentration of substances in liquids. Methods: We use the numerical simulation of electromagnetic field propagation in a waveguide system (integrated silicon waveguides on a silicon dioxide substrate) in the research. The simulation has been carried out using the Ansys Lumerical environment, the FDTD (Finite Difference Time Domain) solver. The parameters of the microring resonators were optimized to obtain the coupling coefficients between the waveguides, providing the operation in the critical coupling mode. Results: We propose the concept of a fully integrated photonic sensor system based on micro-ring add-drop resonators. A sensor based on microring resonators has been developed, which consists of two half-rings with a radius of 18 μm, connected by sections of straight waveguides 3 μm long. An interrogator represented by a microring resonator with a radius of 10 µm has been developed. According to simulation results with a broadband source, the achieved sensor sensitivity was 110 nm per refractive index change, or 1350 dB per refractive index change. We propose a technique for choosing the optimal characteristics of the sensor and interrogator targeted to improve the complete system efficiency. Practical relevance: Sensor systems based on photonic integrated circuits can meet the demand for devices characterized by low power consumption, small size, immunity to electromagnetic interference and low cost.
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全集成光学传感器系统与强度询问
目前,基于集成光子器件的传感器系统是嵌入式信息与控制系统中最重要的分支,具有多种功能。传感器系统的输出特性在很大程度上取决于询问器的效率。基于微环谐振腔的强度询问器可以提供高扫描速率和灵敏度,满足广泛应用的要求。目的:研制一种在同一光子集成电路上由折射传感器和询问器组成的有效传感器系统,用于液体中物质浓度的无标记测定。方法:采用数值模拟方法研究电磁场在波导系统(二氧化硅衬底上的集成硅波导)中的传播。利用Ansys有限元环境、时域有限差分(FDTD)求解器进行了仿真。通过优化微环谐振器的参数,获得了波导间的耦合系数,从而实现了在临界耦合模式下的工作。结果:我们提出了基于微环加降谐振器的全集成光子传感器系统的概念。研制了一种基于微环谐振腔的传感器,该传感器由两个半径为18 μm的半环组成,由3 μm长的直波导连接。研制了一种以半径为10 μ m的微环谐振器为代表的询问器。根据宽带源的仿真结果,实现的传感器灵敏度为110 nm /折射率变化,或1350 dB /折射率变化。我们提出了一种选择传感器和询问器的最佳特性的技术,以提高整个系统的效率。实际意义:基于光子集成电路的传感器系统可以满足低功耗、小体积、抗电磁干扰、低成本的器件需求。
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来源期刊
Informatsionno-Upravliaiushchie Sistemy
Informatsionno-Upravliaiushchie Sistemy Mathematics-Control and Optimization
CiteScore
1.40
自引率
0.00%
发文量
35
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