Perdigones Francisco, Giménez-Gómez Pablo, Muñoz-Berbel Xavier, Aracil Carmen
Electronic Engineering Department, Higher Technical School of Engineering, University of Seville, 41092 Seville, Spain.
Department of Materials and Environmental Chemistry, Stockholm University, 106 91 Stockholm, Sweden.
Micromachines (Basel). 2025 May 8;16(5):564. doi: 10.3390/mi16050564.
Lab on Printed Circuit Boards (Lab-on-PCB) technology has emerged as a promising platform, offering miniaturization, integration, and cost-effective fabrication for a wide range of sensing applications. This review explores the most common optical detection techniques implemented on printed circuit boards (PCBs), including absorbance, fluorescence, and chemiluminescence, discussing their working principles, advantages, and limitations in the context of PCB-based sensing. Additionally, evanescent wave generation is considered as an alternative optical approach with benefits for specific applications. Elements such as excitation sources, photodetectors, and the distinguishing characteristics of each method are analyzed to provide a comprehensive, but concise, overview of the field. Emphasis is placed on how the PCB platform influences the performance, sensitivity, and feasibility of these detection methods, highlighting relevant design considerations. This work aims to provide a solid foundation for researchers interested in optical sensing within this technology, serving as a reference for future developments and applications in PCB-based optical detection.
印刷电路板上的实验室(Lab-on-PCB)技术已成为一个有前景的平台,为广泛的传感应用提供小型化、集成化和经济高效的制造方式。本综述探讨了在印刷电路板(PCB)上实现的最常见光学检测技术,包括吸光度、荧光和化学发光,讨论了它们在基于PCB的传感背景下的工作原理、优点和局限性。此外,倏逝波产生被视为一种适用于特定应用的替代光学方法。对激发源、光电探测器等元件以及每种方法的显著特征进行了分析,以提供该领域全面而简洁的概述。重点在于PCB平台如何影响这些检测方法的性能、灵敏度和可行性,突出相关设计考量。这项工作旨在为对该技术中的光学传感感兴趣的研究人员提供坚实的基础,作为基于PCB的光学检测未来发展和应用的参考。