Quantitative phase imaging based on polarization encoding

被引:7
作者
Cui, Shengwei [1 ,2 ]
Gao, Shan [1 ,2 ]
Li, Changheng [1 ,2 ]
Zhang, Wei [1 ,2 ]
Yao, X. Steve [1 ,2 ,3 ]
机构
[1] Hebei Univ, Coll Phys Sci & Technol, Photon Informat Innovat Ctr, Baoding 071002, Peoples R China
[2] Hebei Univ, Coll Phys Sci & Technol, Hebei Prov Ctr Optic Sensing Innovat, Baoding 071002, Peoples R China
[3] NuVis Photon Inc, Las Vegas, NV 89109 USA
基金
中国国家自然科学基金;
关键词
MICROSCOPY; POLARIMETERS; HOLOGRAPHY; NOISE;
D O I
10.1364/OE.472373
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Most optical characterization methods rely on measuring the complex optical fields emerging from the interaction between light and material systems. Nevertheless, inherent scattering and absorption cause ambiguities in both interferometric and noninterferometric attempts to measure phase. Here we demonstrate that the complete information about a probe optical field can be encoded into the states of polarization, and develop a topography measurement method by blindly varying the ambient refractive index surrounding the sample in a wedged cuvette, which is capable of simultaneously measuring the thickness and the ambient refractive index of the sample in real time, as well as extending the measurement range of the sample thickness. With the method, we have successfully measured the topography of a 136.7 mu m thick coverslip by blindly changing the ambient refractive index by 0.001246, resulting in the thickest sample characterization ever achieved by quantitative phase imaging, to the best of our knowledge. An efficient and complete characterization of optical fields is critical for any high-resolution imaging approach and the technique demonstrated here should prove attractive for applications ranging from microscopy to remote sensing. Thanks to the high precision and fast response speed, this method may pave a new way for measuring the topography of the thick samples, such as biological tissues. (C) 2022 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement
引用
收藏
页码:43622 / 43632
页数:11
相关论文
共 20 条
[1]   Quantitative phase-amplitude microscopy I: optical microscopy [J].
Barone-Nugent, ED ;
Barty, A ;
Nugent, KA .
JOURNAL OF MICROSCOPY-OXFORD, 2002, 206 :194-203
[2]   Optical-mechanical signatures of cancer cells based on fluctuation profiles measured by interferometry [J].
Bishitz, Yael ;
Gabai, Haniel ;
Girshovitz, Pinhas ;
Shaked, Natan T. .
JOURNAL OF BIOPHOTONICS, 2014, 7 (08) :624-630
[3]   Decoupling of geometric thickness and refractive index in quantitative phase microscopy [J].
Cardenas, Nelson ;
Mohanty, Samarendra .
OPTICS LETTERS, 2013, 38 (06) :1007-1009
[4]   Spatial light interference microscopy: principle and applications to biomedicine [J].
Chen, Xi ;
Kandel, Mikhail E. ;
Popescu, Gabriel .
ADVANCES IN OPTICS AND PHOTONICS, 2021, 13 (02) :353-425
[5]   Tomographic phase microscopy [J].
Choi, Wonshik ;
Fang-Yen, Christopher ;
Badizadegan, Kamran ;
Oh, Seungeun ;
Lue, Niyom ;
Dasari, Ramachandra R. ;
Feld, Michael S. .
NATURE METHODS, 2007, 4 (09) :717-719
[6]  
Cui SW, 2017, IEEE PHOTON CONF, P569, DOI 10.1109/IPCon.2017.8116227
[7]   Optical path difference microscopy with a Shack-Hartmann wavefront sensor [J].
Gong, Hai ;
Agbana, Temitope E. ;
Pozzi, Paolo ;
Soloviev, Oleg ;
Verhaegen, Michel ;
Vdovin, Gleb .
OPTICS LETTERS, 2017, 42 (11) :2122-2125
[8]   Single-plane and multiplane quantitative phase imaging by self-reference on-axis holography with a phase-shifting method [J].
Hai, Nathaniel ;
Rosen, Joseph .
OPTICS EXPRESS, 2021, 29 (15) :24210-24225
[9]  
Hariharan P., 2003, Optical interferometry, V2ed
[10]   Computational super-resolution phase retrieval from multiple phase-coded diffraction patterns: simulation study and experiments [J].
Katkovnik, Vladimir ;
Shevkunov, Igor ;
Petrov, Nikolay V. ;
Egiazarian, Karen .
OPTICA, 2017, 4 (07) :786-794