• Infrared and Laser Engineering
  • Vol. 53, Issue 9, 20240331 (2024)
Yongying YANG1,4,*, Tong LING2,3,4,*, Pin CAO4, and Jiabin JIANG4
Author Affiliations
  • 1College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, China
  • 2School of Chemistry, Chemical Engineering and Biotechnology, Nanyang Technological University, Singapore 639798
  • 3School of Electrical and Electronic Engineering, Nanyang Technological University, Singapore 639798
  • 4Hangzhou Zernike Optical Technology Co., Ltd., Hangzhou 310027, China
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    DOI: 10.3788/IRLA20240331 Cite this Article
    Yongying YANG, Tong LING, Pin CAO, Jiabin JIANG. Interferometric wavefront sensing and its applications based on quadriwave lateral shearing interferometry (invited)[J]. Infrared and Laser Engineering, 2024, 53(9): 20240331 Copy Citation Text show less
    References

    [1] T E GUREYEV, K A NUGENT. Rapid quantitative phase imaging using the transport of intensity equation. Optics Communications, 133, 339-346(1997).

    [2] P MARQUET, B RAPPAZ, P J MAGISTRETTI et al. Digital holographic microscopy: a noninvasive contrast imaging technique allowing quantitative visualization of living cells with subwavelength axial accuracy. Optics Letters, 30, 468-470(2005).

    [3] G POPESCU, T IKEDA, R R DASARI et al. Diffraction phase microscopy for quantifying cell structure and dynamics. Optics Letters, 31, 775-777(2006).

    [4] Y PARK, C DEPEURSINGE, G POPESCU. Quantitative phase imaging in biomedicine. Nat Photonics, 12, 578-589(2018).

    [5] J MARRISON, L RäTY, P MARRIOTT et al. Ptychography – a label free, high-contrast imaging technique for live cells using quantitative phase information. Scientific Reports, 3, 2369(2013).

    [6] P FERRAND, M ALLAIN, V CHAMARD. Ptychography in anisotropic media. Optics Letters, 40, 5144-5147(2015).

    [7] X OU, R HORSTMEYER, G ZHENG et al. High numerical aperture Fourier ptychography: principle, implementation and characterization. Optics Express, 23, 3472-3491(2015).

    [8] C KUANG, Y MA, R ZHOU et al. Digital micromirror device-based laser-illumination Fourier ptychographic microscopy. Optics Express, 23, 26999-27010(2015).

    [9] L HUANG, C ZUO, M IDIR et al. Phase retrieval with the transport-of-intensity equation in an arbitrarily shaped aperture by iterative discrete cosine transforms. Optics Letters, 40, 1976-1979(2015).

    [10] J A RODRIGO, T ALIEVA. Rapid quantitative phase imaging for partially coherent light microscopy. Optics Express, 22, 13472-13483(2014).

    [11] C ZUO, Q CHEN, W QU et al. High-speed transport-of-intensity phase microscopy with an electrically tunable lens. Opt Express, 21, 24060-24075(2013).

    [12] B BHADURI, C EDWARDS, H PHAM et al. Diffraction phase microscopy: principles and applications in materials and life sciences. Adv Opt Photon, 6, 57-119(2014).

    [13] B RAPPAZ, P MARQUET, E CUCHE et al. Measurement of the integral refractive index and dynamic cell morphometry of living cells with digital holographic microscopy. Optics Express, 13, 9361-9373(2005).

    [14] P BON, G MAUCORT, B WATTELLIER et al. Quadriwave lateral shearing interferometry for quantitative phase microscopy of living cells. Opt Express, 17, 13080-13094(2009).

    [15] P BON, S LÉCART, E FORT et al. Fast label-free cytoskeletal network imaging in living mammalian cells. Biophysical Journal, 106, 1588-1595(2014).

    [16] T LING, J JIANG, R ZHANG et al. Quadriwave lateral shearing interferometric microscopy with wideband sensitivity enhancement for quantitative phase imaging in real time. Scientific Reports, 7, 9(2017).

    [17] T LING, D LIU, X YUE et al. Quadriwave lateral shearing interferometer based on a randomly encoded hybrid grating. Optics Letters, 40, 2245-2248(2015).

    [18] T LING, Y YANG, D LIU et al. General measurement of optical system aberrations with a continuously variable lateral shear ratio by a randomly encoded hybrid grating. Applied Optics, 54, 8913-8920(2015).

    [19] P P NAULIEAU, K A GOLDBERG, J BOKOR. Extreme ultraviolet carrier-frequency shearing interferometry of a lithographic four-mirror optical system. Journal of Vacuum Science & Technology B, 18, 2939-2943(2000).

    [20] T LING, Y YANG, X YUE et al. Common-path and compact wavefront diagnosis system based on cross grating lateral shearing interferometer. Applied Optics, 53, 7144-7152(2014).

    [21] J PRIMOT, N GUéRINEAU. Extended Hartmann test based on the pseudoguiding property of a hartmann mask completed by a phase chessboard. Applied Optics, 39, 5715-5720(2000).

    [22] CHANTELOUP JC F, COHEN M. Compact high resolution four wave lateral shearing interferometer [C]Conference on Optical Fabrication, Testing, Metrology, Proceedings of SPIE, 2004, 5252: 282292.

    [23] J C CHANTELOUP. Multiple-wave lateral shearing interferometry for wave-front sensing. Applied Optics, 44, 1559-1571(2005).

    [24] LING T, LIU D, SUN L, et al. Wavefront retrieval f crossgrating lateral shearing interferometer based on differential Zernike polynomial fitting [C]Optical Manufacturing Testing X, Proceedings of SPIE, 2013, San Diego, Califnia, United States, 2013, 8838: 88380J.

    [25] S VELGHE, J PRIMOT, N GUéRINEAU et al. Wave-front reconstruction from multidirectional phasederivatives generated by multilateral shearing interferometers. Optics Letters, 30, 245-247(2005).

    [26] LING T, YANG Y, LIU D, et al. Retrieval of phase distributions from the quadriwave lateral shearing interferogram obtained by romly encoded hybrid grating [C]SPIE Optifab, 2015, Rochester, New Yk, United States, 2015, 9633: 96332G.

    [27] S AKNOUN, P BON, J SAVATIER et al. Quantitative retardance imaging of biological samples using quadriwave lateral shearing interferometry. Opt Express, 23, 16383-16406(2015).

    [28] S PRADEEP, T A ZANGLE. Quantitative phase velocimetry measures bulk intracellular transport of cell mass during the cell cycle. Scientific Reports, 12, 6074(2022).

    [29] L DURDEVIC, GINÉS A RELAÑO, A ROUEFF et al. Biomass measurements of single neurites in vitro using optical wavefront microscopy. Biomed Opt Express, 13, 6550-6560(2022).

    [30] S AKNOUN, M AURRAND-LIONS, B WATTELLIER et al. Quantitative retardance imaging by means of quadri-wave lateral shearing interferometry for label-free fiber imaging in tissues. Optics Communications, 422, 17-27(2018).

    [31] J RIZZI, T WEITKAMP, N GUéRINEAU et al. Quadriwave lateral shearing interferometry in an achromatic and continuously self-imaging regime for future X-ray phase imaging. Optics Letters, 36, 1398-1400(2011).

    [32] VELGHE S, BRAHMI D, BOUCHER W, et al. MWIR LWIR wavefront sensing with quadriwave lateral shearing interferometry [C]SPIE Defense, Security, Sensing, 2009, lo, Flida, United States, 2009, 7300: 73000T.

    [33] S KHADIR, D ANDRÉN, R VERRE et al. Metasurface optical characterization using quadriwave lateral shearing interferometry. ACS Photonics, 8, 603-613(2021).

    [34] S KHADIR, P BON, D VIGNAUD et al. Optical imaging and characterization of graphene and other 2D materials using quantitative phase microscopy. ACS Photonics, 4, 3130-3139(2017).

    [35] P BON, N BOURG, S LÉCART et al. Three-dimensional nanometre localization of nanoparticles to enhance super-resolution microscopy. Nature Communications, 6, 7764(2015).

    [36] G BAFFOU, P BON, J SAVATIER et al. Thermal imaging of nanostructures by quantitative optical phase analysis. ACS Nano, 6, 2452-2458(2012).

    Yongying YANG, Tong LING, Pin CAO, Jiabin JIANG. Interferometric wavefront sensing and its applications based on quadriwave lateral shearing interferometry (invited)[J]. Infrared and Laser Engineering, 2024, 53(9): 20240331
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