Applied Photonics and Nanophotonics Laboratory, Department of Physics, Tezpur University, Sonitpur, Assam, India.
Department of Pathology, Tezpur Medical College and Hospital, Sonitpur, Assam, India.
J Microsc. 2019 Oct;276(1):13-20. doi: 10.1111/jmi.12829. Epub 2019 Sep 22.
Portable, low-cost smartphone platform microscopic systems have emerged as a potential tool for imaging of various micron and submicron scale particles in recent years (Ozcan; Pirnstill and Coté; Breslauer et al.; Zhu et al.). In most of the reported works, it involves either the use of sophisticated optical set-ups along with a high-end computational tool for postprocessing of the captured images, or it requires a high-end configured smartphone to obtain enhanced imaging of the sample. Present work reports the working of a low-cost, field-portable 520× optical microscope using a smartphone. The proposed smartphone microscopic system has been designed by attaching a 3D printed compact optical set-up to the rear camera of a regular smartphone. By using cloud-based services, an image processing algorithm has been developed which can be accessed anytime through a mobile broadband network. Using this facility, the quality of the captured images can be further enhanced, thus obviating the need for dedicated computational tools for postprocessing of the images. With the designed microscopic system, an optical resolution ∼2 µm has been obtained. Upon postprocessing, the resolution of the captured images can be improved further. It is envisioned that with properly designed optical set-up in 3D printer and by developing an image processing application in the cloud, it is possible to obtain a low-cost, user-friendly, field-portable optical microscope on a regular smartphone that performs at par with that of a laboratory-grade microscope. LAY DESCRIPTION: With the ever-improving features both in hardware and software part, smartphone becomes ubiquitous in the modern civilised society with approximately 8.1 billion cell phone users across the world, and ∼40% of them can be considered as smartphones. This technology is undoubtedly the leading technology of the 21st century. Very recently, various researchers across the globe have utilised different sensing components embedded in the smartphone to convert it into a field-portable low-cost and user-friendly tool which can be used for different sensing and imaging purposes. By using simple optical components such as lens, pinhole, diffuser etc. and the camera of the smartphone, various groups have converted the phone into a microscopic imaging system. Again, by removing the camera lenses of the phone, holography images of microscopic particles by directly casting its shadows on the CMOS sensor on the phone has been demonstrated. The holographic images have subsequently been processed using the dedicated computational tool, and the original photos of the samples can be obtained. All the reported smartphone-based microscopic systems either suffer from relatively low field-of-view (FOV), resolution or it needs a high computational platform. Present work, demonstrate an alternative approach by which a reasonably good resolution (<2 µm) along with high optical magnification (520×) and a large FOV (150 µm) has been obtained on a regular smartphone. For postprocessing of the captured images an image processing algorithm has been developed in the cloud and the same can be accessed by the smartphone application, obviating the need of dedicated computational tool and a high-end configured smartphone for the proposed microscope. For the development of the proposed microscopic system, a simple optical set-up has been fabricated in a 3D printer. The set-up houses all the required optical components and the sample specimen with the 3D-printed XY stage, and it can be attached easily to the rear camera of the smartphone. Using the proposed microscopic system, enhanced imaging of USAF target and red blood cells have been successfully demonstrated. With the readily available optical components and a regular smartphone, the net cost involvement is significantly low (less than $250, including the smartphone). We envisioned that the designed system could be utilised for point-of-care diagnosis in resource-poor settings where access to the laboratory facilities is very limited.
近年来,便携式、低成本的智能手机平台显微镜系统已经成为各种微米和亚微米级颗粒成像的潜在工具(Ozcan;Pirnstill 和 Coté;Breslauer 等人;Zhu 等人)。在大多数报道的工作中,要么涉及使用复杂的光学装置以及用于捕获图像的后处理的高端计算工具,要么需要配置高端智能手机才能获得对样品的增强成像。本工作报告了使用智能手机的低成本、现场便携式 520×光学显微镜的工作原理。所提出的智能手机显微镜系统是通过将 3D 打印的紧凑型光学装置附加到普通智能手机的后置摄像头来设计的。通过使用基于云的服务,开发了一种图像处理算法,该算法可以通过移动宽带网络随时访问。使用此功能,可以进一步增强捕获图像的质量,从而避免了对专用计算工具进行图像后处理的需要。使用设计的显微镜系统,获得了约 2 µm 的光学分辨率。在进行后处理后,可以进一步提高捕获图像的分辨率。可以预见的是,通过在 3D 打印机中设计适当的光学装置,并在云中开发图像处理应用程序,可以在普通智能手机上获得具有成本效益、用户友好、现场便携的光学显微镜,其性能可与实验室级显微镜相媲美。