Chinese Journal of Lasers, Volume. 49, Issue 20, 2007206(2022)
Three-Dimensional Morphological Reconstruction of Nucleated Cell Based on Orthogonal Dual-Wavelength Measurement
[1] Cacace T, Bianco V, Ferraro P. Quantitative phase imaging trends in biomedical applications[J]. Optics and Lasers in Engineering, 135, 106188(2020).
[2] Mehta D S. Quantitative phase optical microscopic techniques for biomedical imaging and diagnostic applications[J]. Proceedings of the National Academy of Sciences, India Section A: Physical Sciences, 88, 437-451(2018).
[3] Li Y F, Fanous M J, Kilian K A et al. Author Correction: quantitative phase imaging reveals matrix stiffness-dependent growth and migration of cancer cells[J]. Scientific Reports, 10, 19025(2020).
[4] Yang Z W, Zhang L, Lü N et al. Progress of three-dimensional, label-free quantitative imaging of refractive index in biological samples[J]. Chinese Journal of Lasers, 49, 0507201(2022).
[5] Mu S Q, Dong D S, Shi K B. Label-free optical imaging technology[J]. Laser & Optoelectronics Progress, 59, 1200001(2022).
[6] Xu X Q, Wang Y W, Xu Y Y et al. Dual-wavelength in-line phase-shifting interferometry based on two dc-term-suppressed intensities with a special phase shift for quantitative phase extraction[J]. Optics Letters, 41, 2430-2433(2016).
[7] Jafarfard M R, Moon S, Tayebi B et al. Dual-wavelength diffraction phase microscopy for simultaneous measurement of refractive index and thickness[J]. Optics Letters, 39, 2908-2911(2014).
[8] Boss D, Kühn J, Jourdain P et al. Measurement of absolute cell volume, osmotic membrane water permeability, and refractive index of transmembrane water and solute flux by digital holographic microscopy[J]. Journal of Biomedical Optics, 18, 036007(2013).
[9] Han H[D]. Phase retrieval method and 3D morphological reconstruction technology of blood cells based on non-orthogonal phase imaging(2021).
[10] Wang Y W, Chen Y J, Lu C H et al. Phase features of several typical blood cells and their identification without unwrapping[J]. Optica Applicata, 43, 505-514(2013).
[11] Tang W B, Ji Y, Zhang M M et al. A rapid detection method for morphological characteristics of biological cells based on phase imaging[J]. BioMed Research International, 2018, 4651639(2018).
[12] Li X C, Liu L H, Zhao J M et al. Optical properties of sodium chloride solution within the spectral range from 300 to 2500 nm at room temperature[J]. Applied Spectroscopy, 69, 635-640(2015).
[13] Zhang M M[D]. Experimental analysis of biological cell morphological rapid detection based on edge extraction of optical phase information(2019).
[14] Ji Y, Fu S, Zhang M M et al. Characterization of the solution concentration variation in microstructure by phase imaging[J]. Journal of Modern Optics, 67, 454-461(2020).
[15] Han H, Xu Y Y, Liao J R et al. Real-time measurement of three-dimensional morphology of blood cells in batches by non-orthogonal phase imaging[J]. Optics and Lasers in Engineering, 134, 106303(2020).
[16] Habaza M, Gilboa B, Roichman Y et al. Tomographic phase microscopy with 180° rotation of live cells in suspension by holographic optical tweezers[J]. Optics Letters, 40, 1881-1884(2015).
[17] Liang Y S, Yao B L, Lei M. Applications of holographic optical tweezers in biological research[J]. Chinese Journal of Lasers, 47, 0207020(2020).
Get Citation
Copy Citation Text
Lingran Gong, Xiyu Jia, Yuanyuan Xu, Yawei Wang, Ying Ji. Three-Dimensional Morphological Reconstruction of Nucleated Cell Based on Orthogonal Dual-Wavelength Measurement[J]. Chinese Journal of Lasers, 2022, 49(20): 2007206
Category: Biomedical Optical Imaging
Received: May. 16, 2022
Accepted: Jun. 20, 2022
Published Online: Aug. 24, 2022
The Author Email: Ying Ji (jy@ujs.edu.cn)