Dipartimento di Elettrotecnica ed Elettronica, Politecnico di Bari, Bari, Italy.
Sensors (Basel). 2012 Nov 9;12(11):15558-98. doi: 10.3390/s121115558.
Nowadays, optical devices and circuits are becoming fundamental components in several application fields such as medicine, biotechnology, automotive, aerospace, food quality control, chemistry, to name a few. In this context, we propose a complete review on integrated photonic sensors, with specific attention to materials, technologies, architectures and optical sensing principles. To this aim, sensing principles commonly used in optical detection are presented, focusing on sensor performance features such as sensitivity, selectivity and rangeability. Since photonic sensors provide substantial benefits regarding compatibility with CMOS technology and integration on chips characterized by micrometric footprints, design and optimization strategies of photonic devices are widely discussed for sensing applications. In addition, several numerical methods employed in photonic circuits and devices, simulations and design are presented, focusing on their advantages and drawbacks. Finally, recent developments in the field of photonic sensing are reviewed, considering advanced photonic sensor architectures based on linear and non-linear optical effects and to be employed in chemical/biochemical sensing, angular velocity and electric field detection.
如今,光学器件和电路已成为多个应用领域(如医学、生物技术、汽车、航空航天、食品质量控制、化学等)的基本组成部分。在这种背景下,我们对集成光子传感器进行了全面的综述,特别关注材料、技术、架构和光学传感原理。为此,我们介绍了光学检测中常用的传感原理,重点介绍了传感器性能特征,如灵敏度、选择性和量程。由于光子传感器在与 CMOS 技术的兼容性以及在具有微米级足迹的芯片上的集成方面具有显著优势,因此广泛讨论了用于传感应用的光子器件的设计和优化策略。此外,还介绍了光子电路和器件中使用的多种数值方法、模拟和设计,重点介绍了它们的优缺点。最后,我们综述了光子传感领域的最新进展,考虑了基于线性和非线性光学效应的先进光子传感器架构,这些架构可用于化学/生物化学传感、角速度和电场检测。