Department of Electrical and Computer Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA; Nick Holonyak Jr. Micro and Nanotechnology Laboratory, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Nick Holonyak Jr. Micro and Nanotechnology Laboratory, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA; Department of Bioengineering, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Biosens Bioelectron. 2023 May 15;228:115197. doi: 10.1016/j.bios.2023.115197. Epub 2023 Mar 6.
Label-free detection and digital counting of nanometer-scaled objects such as nanoparticles, viruses, extracellular vesicles, and protein molecules enable a wide range of applications in cancer diagnostics, pathogen detection, and life science research. Here, we report the design, implementation, and characterization of a compact Photonic Resonator Interferometric Scattering Microscope (PRISM) designed for point-of-use environments and applications. The contrast of interferometric scattering microscopy is amplified through a photonic crystal surface, upon which scattered light from an object combines with illumination from a monochromatic source. The use of a photonic crystal substrate for interferemetric scattering microscopy results in reduced requirements for high-intensity lasers or oil-immersion objectives, thus opening a pathway toward instruments that are more suitable for environments outside the optics laboratory. The instrument incorporates two innovative elements that facilitate operation on a desktop in ordinary laboratory environments by users that do not have optics expertise. First, because scattering microscopes are extremely sensitive to vibration, we incorporated an inexpensive but effective solution of suspending the instrument's main components from a rigid metal framework using elastic bands, resulting in an average of 28.7 dBV reduction in vibration amplitude compared to an office desk. Second, an automated focusing module based on the principle of total internal reflection maintains the stability of image contrast over time and spatial position. In this work, we characterize the system's performance by measuring the contrast from gold nanoparticles with diameters in the 10-40 nm range and by observing various biological analytes, including HIV virus, SARS-CoV-2 virus, exosome, and ferritin protein.
无标记纳米级物体(如纳米颗粒、病毒、细胞外囊泡和蛋白质分子)的检测和数字计数可广泛应用于癌症诊断、病原体检测和生命科学研究。在此,我们报告了一种用于现场使用环境和应用的紧凑型光子晶体共振干涉散射显微镜(PRISM)的设计、实现和特性。通过光子晶体表面放大干涉散射显微镜的对比度,物体的散射光与单色光源的照明光在该表面上结合。在干涉散射显微镜中使用光子晶体衬底可降低对高强度激光或油浸物镜的要求,从而为更适合光学实验室以外环境的仪器开辟了道路。该仪器包含两个创新元素,可方便在普通实验室环境中由没有光学专业知识的用户在桌面上操作。首先,由于散射显微镜对振动极其敏感,我们采用了一种廉价但有效的解决方案,即用弹性带将仪器的主要部件从刚性金属框架上悬挂起来,与办公桌面相比,振动幅度平均降低了 28.7 dBV。其次,基于全内反射原理的自动聚焦模块可保持图像对比度随时间和空间位置的稳定性。在这项工作中,我们通过测量直径在 10-40nm 范围内的金纳米颗粒的对比度,并观察包括 HIV 病毒、SARS-CoV-2 病毒、外泌体和铁蛋白等各种生物分析物,来表征系统的性能。