Hu Xinyue, Abbasi Reza, Wachsmann-Hogiu Sebastian
Department of Bioengineering, McGill University, Montreal, QC H3A 0C3, Canada.
Nanophotonics. 2023 Oct 13;12(21):3977-4008. doi: 10.1515/nanoph-2023-0301. eCollection 2023 Oct.
Optical image sensors are 2D arrays of pixels that integrate semiconductor photodiodes and field effect transistors for efficient photon conversion and processing of generated electrons. With technological advancements and subsequent democratization of these sensors, opportunities for integration with microfluidics devices are currently explored. 2D pixel arrays of such optical image sensors can reach dimensions larger than one centimeter with a sub-micrometer pixel size, for high spatial resolution lensless imaging with large field of view, a feat that cannot be achieved with lens-based optical microscopy. Moreover, with advancements in fabrication processes, the field of microfluidics has evolved to develop microfluidic devices with an overall size below one centimeter and individual components of sub-micrometer size, such that they can now be implemented onto optical image sensors. The convergence of these fields is discussed in this article, where we review fundamental principles, opportunities, challenges, and outlook for integration, with focus on contact-mode imaging configuration. Most recent developments and applications of microfluidic lensless contact-based imaging to the field of biosensors, in particular those related to the potential for point of need applications, are also discussed.
光学图像传感器是像素的二维阵列,它集成了半导体光电二极管和场效应晶体管,用于实现高效的光子转换和对产生的电子进行处理。随着这些传感器的技术进步以及随后的普及,目前正在探索将其与微流控设备集成的机会。这种光学图像传感器的二维像素阵列可以达到尺寸大于一厘米,像素尺寸为亚微米级,用于具有大视场的高空间分辨率无透镜成像,这是基于透镜的光学显微镜无法实现的壮举。此外,随着制造工艺的进步,微流控领域已经发展到能够开发整体尺寸小于一厘米且单个组件尺寸为亚微米级的微流控设备,从而使它们现在可以集成到光学图像传感器上。本文讨论了这些领域的融合,我们回顾了集成的基本原理、机会、挑战和前景,重点是接触模式成像配置。还讨论了微流控无透镜接触式成像在生物传感器领域的最新发展和应用,特别是那些与即时检测应用潜力相关的发展和应用。