[1] Sun W, Lu M, Li L, et al. Application progress on microfluidic chip technology [J]. Chinese Journal of Frontier Health and Quarantine, 2019, 42(3): 221-224. (in Chinese)
[2] Yan H, Long J, Liu C Y, et al. Review of the development and appilication of deformation measurement based on holography and digital speckle interferometry [J]. Infrared and Laser Engineering, 2019, 48(6): 0603010. (in Chinese)
[3] Tu S Q, Wang Y H, Sun F Y, et al. Fast detection of smooth surface deformation based on DSPI [J]. Chinses Optics, 2018, 11(2): 248-254. (in Chinese) doi:  10.3788/co.20181102.0248
[4] Chen Z, Jiang H Z, Liu X, et al. Measurement of surface defects of optical elements using digital holography [J]. Optics and Precision Engineering, 2017, 25(3): 576-583. (in Chinese) doi:  10.3788/OPE.20172503.0576
[5] Zeng Y, Chang X, Lei H, et al. Characteristics analysis of digital image-plane holographic microscop [J]. Scanning, 2016, 38(4): 288-296. doi:  10.1002/sca.21268
[6] Jin Q W, Guan J, Wu X C. Experimental study on on-line monitoring pulverized coal fineness of 300 MW coal-fired plant by digital holography [J]. Infrared and Laser Engineering, 2021, 50(9): 20200456. (in Chinese)
[7] Carter C B, Williams D B. Transmission electron microscopy, diffraction, imaging, and spectroscopy [J]. Journal of Materials Science, 2017, 52(6): 2989-2994. doi:  10.1007/s10853-016-0540-1
[8] Zong H T, Zhang Y H, Wang F M, et al. Large field of view line-scanning confocal holographic microscopy [J]. Optics and Precision Engineering, 2021, 29(1): 1-9. (in Chinese) doi:  10.37188/OPE.20212901.0001
[9] Zhao J W, Zhang Y H, Wang F M, et al. Line-scanning confocal microscopic imaging based on virtual structured modulation [J]. Chinese Optics, 2021, 14(2): 431-445. (in Chinese) doi:  10.37188/CO.2020-0120
[10] Meyer G, Amer N M. Novel optical approach to atomic force microscopy [J]. Applied Physics Letters, 1988, 53(12): 1045-1047. doi:  10.1063/1.100061
[11] 王喆. 微流控芯片定量检测的数字全息显微成像技术研究[D]. 北京: 北京工业大学, 2018: 23-52.

Wang Z. Quantitative microscopy and tomography in microfluidics by digital holography[D]. Beijing: Beijing University of Technology, 2018: 23-52. (in Chinese)
[12]

Sung Y J, Lue N, Hamza B, et al. Three-dimensional holographic refractive-index measurement of continuously flowing cells in a microfluidic channel [J]. Physical Review Applied, 2014, 1(1): 014002. doi:  10.1103/PhysRevApplied.1.014002
[13]

Liu Y, Jiao M X, Xing J H, et al. Automatic compensation of phase distortion based on Zernike surface fitting in digital holographic microscopy [J]. Journal of Xi’an University of Technology, 2017, 33(2): 193-198. (in Chinese)
[14]

Di J L, Zhao J L, Fan Q, et al. Phase correction of wavefront reconstruction in digital holographic microscopy [J]. Acta Optica Sinica, 2008, 28(1): 56-61. doi:  10.3788/AOS20082801.0056
[15]

Ferraro P, Alferi D, Nicola S D, et al. Quantitative phase-contrast microscopy by a lateral shearapproach to digital holographic image reconstruction [J]. Optics Letters, 2006, 31(10): 1405-1407. doi:  10.1364/OL.31.001405
[16]

Xiao W, Yang L, Pan F, et al. Automatic phase aberration compensation for digital holographic microscopy combined with phase fitting and deep learning [J]. Acta Photonica Sinica, 2018, 47(12): 164-173. (in Chinese)
[17]

OuYang L T, Wang D Y, Zhao J, et al. Experimental study on the phase-contrast imaging of the living hippocampal neuron cells by digital holographic microscopy [J]. Chinese Journal of Lasers, 2013, 40(9): 0909001. (in Chinese)
[18]

Ferraro P, Nicola S D, Finizio A, et al. Compensation of the inherent wave front curvature in digital holographic coherent microscopy for quantitative phase-contrast imaging [J]. Applied Optics, 2003, 42(11): 1938-1946. doi:  10.1364/AO.42.001938
[19]

Fan J P, Zhang D S, Lv X X, et al. Phase Reconstruction and compensation of biological cell with digital holographic microscopy [J]. Chinese Journal of Lasers, 2014, 42(2): 0209019. (in Chinese)