Coupling Michelson-like lateral shear interferometric microscopy with self-referencing numerical phase calibration for quantitative measurement of 3D surface morphology of biological cells

Author:

Sun Tengfei12ORCID,Ke Shaoying3ORCID,Sui Wentao2,Zhang Wenhao4,Lu Peng5ORCID,Qi Dongfeng12,Yang Bing12ORCID,Wei Juan12,Zhang Wei12,Zheng Hongyu12

Affiliation:

1. Centre for Advanced Laser Manufacturing (CALM), Shandong University of Technology 1 , Zibo, Shandong 255000, China

2. School of Mechanical Engineering, Shandong University of Technology 2 , Zibo, Shandong 255000, China

3. Key Laboratory of Light Field Manipulation and System Integration Applications in Fujian Province, School of Physics and Information Engineering, Minnan Normal University 3 , Zhangzhou, Fujian 363000, China

4. International School for Optoelectronic Engineering, Qilu University of Technology (Shandong Academy of Sciences) 4 , Jinan, Shandong 250300, China

5. National Demonstration Center for Experimental Physics Education, School of Physics, Shandong University 5 , Jinan, Shandong 250100, China

Abstract

A Michelson interferometer is commonly used for evaluating the morphology of a cell. However, the interference imaging with reference and object beams is easily affected by external vibrations and environmental disturbances, leading to unstable interference patterns. In this paper, the three-dimensional surface morphology of the biological cell is evaluated by a new quantitative phase imaging method, which couples Michelson-like lateral shear interferometric microscopy with self-referencing numerical phase calibration. The Michelson-like lateral shear interferometric microscopy is constructed by replacing the two plane mirrors of the traditional Michelson interferometer with two common right-angle prisms and generates interference fringe patterns. The lateral shear is created and freely adjustable by simply translating/or rotating one right-angle prism. To calculate the phase information of the biological cells quantitatively, the classical Fourier transform method is used to process the recorded interferogram, and then the self-referencing numerical phase calibration method is utilized for acquiring accurate phase information. Successfully achieving quantitative phase imaging of a cell verifies the feasibility and practicability of the proposed method.

Funder

National Key Research and Development Program of China

Natural Science Foundation of Shandong Province

Taishan Scholar Project of Shandong Province

open project of key laboratory of light field manipulation and system integration applications in fujian province

Publisher

Laser Institute of America

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