Fourier ptychography: current applications and future promises

被引:157
作者
Konda, Pavan Chandra [1 ]
Loetgering, Lars [2 ,3 ]
Zhou, Kevin C. [1 ]
Xu, Shiqi [1 ]
Harvey, Andrew R. [4 ]
Horstmeyer, Roarke [1 ]
机构
[1] Duke Univ, Dept Biomed Engn, Durham, NC 27708 USA
[2] Adv Res Ctr Nanolithog, Sci Pk 106, NL-1098 XG Amsterdam, Netherlands
[3] Vrije Univ, De Boelelaan 1081, NL-1081 HV Amsterdam, Netherlands
[4] Univ Glasgow, Sch Phys & Astron, Glasgow G12 8QQ, Lanark, Scotland
关键词
OPTICAL DIFFRACTION TOMOGRAPHY; PHASE-RETRIEVAL; HIGH-RESOLUTION; STRUCTURED ILLUMINATION; QUANTITATIVE PHASE; WIDE-FIELD; INTENSITY MEASUREMENTS; IMAGE-RECONSTRUCTION; REFRACTIVE-INDEX; COMPUTATIONAL ILLUMINATION;
D O I
10.1364/OE.386168
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Traditional imaging systems exhibit a well-known trade-off between the resolution and the field of view of their captured images. Typical cameras and microscopes can either "zoom in" and image at high-resolution, or they can "zoom out" to see a larger area at lower resolution, but can rarely achieve both effects simultaneously. In this review, we present details about a relatively new procedure termed Fourier ptychography (FP), which addresses the above trade-off to produce gigapixel-scale images without requiring any moving parts. To accomplish this, FP captures multiple low-resolution, large field-of-view images and computationally combines them in the Fourier domain into a high-resolution, large field-of-view result. Here, we present details about the various implementations of FP and highlight its demonstrated advantages to date, such as aberration recovery, phase imaging, and 3D tomographic reconstruction, to name a few. After providing some basics about FP, we list important details for successful experimental implementation, discuss its relationship with other computational imaging techniques, and point to the latest advances in the field while highlighting persisting challenges. (C) 2020 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
引用
收藏
页码:9603 / 9630
页数:28
相关论文
共 207 条
[1]   Fourier ptychographic microscopy at telecommunication wavelengths using a femtosecond laser [J].
Ahmed, Ishtiaque ;
Alotaibi, Maged ;
Skinner-Ramos, Sueli ;
Dominguez, Daniel ;
Bernussi, Ayrton A. ;
de Peralta, Luis Grave .
OPTICS COMMUNICATIONS, 2017, 405 :363-367
[2]   Phase and amplitude imaging with quantum correlations through Fourier Ptychography [J].
Aidukas, Tomas ;
Konda, Pavan Chandra ;
Harvey, Andrew R. ;
Padgett, Miles J. ;
Moreau, Paul-Antoine .
SCIENTIFIC REPORTS, 2019, 9 (1)
[3]   Low-cost, sub-micron resolution, wide-field computational microscopy using opensource hardware [J].
Aidukas, Tomas ;
Eckert, Regina ;
Harvey, Andrew R. ;
Waller, Laura ;
Konda, Pavan C. .
SCIENTIFIC REPORTS, 2019, 9 (1)
[4]   Synthetic aperture fourier holographic optical microscopy [J].
Alexandrov, Sergey A. ;
Hillman, Timothy R. ;
Gutzler, Thomas ;
Sampson, David D. .
PHYSICAL REVIEW LETTERS, 2006, 97 (16)
[5]   Image reconstruction in spherical-wave intensity diffraction tomography [J].
Anastasio, MA ;
Shi, DX ;
Huang, Y ;
Gbur, G .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 2005, 22 (12) :2651-2661
[6]   Lose The Views: Limited Angle CT Reconstruction via Implicit Sinogram Completion [J].
Anirudh, Rushil ;
Kim, Hyojin ;
Thiagarajan, Jayaraman J. ;
Mohan, K. Aditya ;
Champley, Kyle ;
Bremer, Timo .
2018 IEEE/CVF CONFERENCE ON COMPUTER VISION AND PATTERN RECOGNITION (CVPR), 2018, :6343-6352
[7]  
[Anonymous], 2015, TENSOR
[8]  
[Anonymous], 1991, Synthetic aperture radar
[9]   SUB-ANGSTROM TRANSMISSION MICROSCOPY - A FOURIER-TRANSFORM ALGORITHM FOR MICRODIFFRACTION PLANE INTENSITY INFORMATION [J].
BATES, RHT ;
RODENBURG, JM .
ULTRAMICROSCOPY, 1989, 31 (03) :303-308
[10]   Information multiplexing in ptychography [J].
Batey, Darren J. ;
Claus, Daniel ;
Rodenburg, John M. .
ULTRAMICROSCOPY, 2014, 138 :13-21