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高分辨率、高性价比、紧凑型、便携式倒置显微镜。

High-resolution cost-effective compact portable inverted light microscope.

机构信息

School of Mechanical and Aerospace Engineering, Seoul National University, Seoul, 08826, South Korea.

Chemical Engineering Department, National Institute of Technology Rourkela, Odisha, 769008, India.

出版信息

J Microsc. 2019 Mar;273(3):199-209. doi: 10.1111/jmi.12775. Epub 2018 Dec 17.

DOI:10.1111/jmi.12775
PMID:30561003
Abstract

Commercial high-resolution optical microscopes are essential for microscopy imaging; however, they are expensive and bulky, which limits their use in point-of-care devices, resource-limited areas, and real-time imaging of a sample in a large apparatus. In this study, we report a novel compact (10 cm × 5 cm × 5 cm, without the light source) lightweight (∼0.5 kg) submicron-resolution inverted optical microscope at low cost (∼$ 300). Our technique utilises the proximity of the image sensor to a commercial microscope objective lens for compactness of the microscope. The use of an image sensor with a small pixel size helps to reduce the information loss, which provides high-resolution images. Moreover, our technique offers a freedom to tailor the design of microscope according to the required resolution, cost, and portability for specific applications, which makes it a suitable candidate for affordable point-of-care devices. Images of several micron-to-submicron scale patterns and spherical beads are acquired to observe the resolution and quality of the images obtained using our microscope. In addition, we demonstrate the applications of our microscope in various fields such as recording of high-speed water microdroplet formation inside a microfluidic device, high-resolution live cell imaging inside an incubator, and real-time imaging of crack propagation in a sample under stretching by a material testing system (MTS). Therefore, this portable and inexpensive microscope provides the essential functionalities of a bulky expensive high-performance microscope at a lower cost. LAY DESCRIPTION: Microscope is an essential tool in research allowing for observation of microsized objects and life forms. Contemporary commercial high-resolution microscopes have long optical paths involving series of lenses and filters. Although this configuration precisely corrects for optical distortions and produces clear images, it makes modern microscopes very costly and bulky, restricting their usage to low-funded research laboratories and at remote places. We have developed a simple digital microscope with high-resolution but with much smaller size and lighter in weight at low cost by removing the long optical terrain. Our microscope consists of a commercial microscope objective lens for magnification and semiconductor image sensor with small pixels placed right after the lens, both of which are affordable and easily available. The small pixel size helps to translate the magnified analogue sample image to high-resolution digital image. In our paper, we show that our microscope can view micro and submicron-sized patterns and beads. Moreover, our fist-sized microscope can be placed inside an incubator for real-time imaging of cells or rotated sideways for recording submicron-sized crack generation due stretching of novel materials, both of which could not be accomplished with the 2 feet tall laboratory microscopes.

摘要

商业高分辨率光学显微镜是显微镜成像的必备工具;然而,它们昂贵且体积庞大,这限制了它们在即时护理设备、资源有限的地区以及大型设备中对样品进行实时成像的使用。在这项研究中,我们报告了一种新型的紧凑(10 厘米×5 厘米×5 厘米,不包括光源)、重量轻(约 0.5 公斤)、亚微米分辨率的倒置光学显微镜,成本低(约 300 美元)。我们的技术利用图像传感器与商业显微镜物镜的接近度来实现显微镜的紧凑性。使用小像素尺寸的图像传感器有助于减少信息丢失,从而提供高分辨率图像。此外,我们的技术提供了根据特定应用的所需分辨率、成本和便携性来定制显微镜设计的自由,这使其成为经济实惠的即时护理设备的合适候选者。我们获取了几个微米到亚微米级的图案和球形珠子的图像,以观察使用我们的显微镜获得的图像的分辨率和质量。此外,我们展示了我们的显微镜在各种领域的应用,例如在微流控装置内记录高速水微滴的形成、在培养箱内对活细胞进行高分辨率成像,以及在材料测试系统 (MTS) 下对样品中裂纹扩展进行实时成像。因此,这款便携式、低成本的显微镜以更低的成本提供了昂贵的高性能显微镜的基本功能。

非技术描述

显微镜是研究中必不可少的工具,可用于观察微小物体和生命形式。现代商业高分辨率显微镜具有长光路,涉及一系列透镜和滤波器。尽管这种配置精确地纠正了光学失真并产生了清晰的图像,但它使得现代显微镜非常昂贵且庞大,限制了它们在低资金研究实验室和偏远地区的使用。我们通过去除长光路,开发了一种具有高分辨率但尺寸更小、重量更轻的简单数字显微镜,成本更低。我们的显微镜由一个商业显微镜物镜用于放大,以及一个放置在透镜后面的小像素半导体图像传感器,两者都价格实惠且易于获得。小像素尺寸有助于将放大的模拟样本图像转换为高分辨率数字图像。在我们的论文中,我们表明我们的显微镜可以观察微米和亚微米大小的图案和珠子。此外,我们的拳头大小的显微镜可以放置在培养箱内进行实时细胞成像,或者旋转到侧面记录新型材料拉伸引起的亚微米级裂纹生成,这两者都无法用 2 英尺高的实验室显微镜完成。

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