Open Access
Issue
J. Eur. Opt. Soc.-Rapid Publ.
Volume 7, 2012
Article Number 12010
Number of page(s) 7
DOI https://doi.org/10.2971/jeos.2012.12010
Published online 19 April 2012
  1. O. Mudanyali, W. Bishara, and A. Ozcan, “Lensfree super-resolution holographic microscopy using wetting films on a chip,” Opt. Express 19, 17378–17389 (2011). [NASA ADS] [CrossRef] [Google Scholar]
  2. J. P. Ryle, K. M. Molony, S. McDonnell, T. J. Naughton, and J. T. Sheridan “Multispectral lensless digital holographic microscope: imaging MCF-7 and MDA-MB-231 cancer cell cultures,” Proc. of SPIE 7442, 1–11 (2009). [Google Scholar]
  3. V. R. Singh, E. Darakis, G. Hegde and A. Asundi, “A new methodology for pixel size retention in lensless digital holographic microscopy applied to micro-particle analysis,” J. Opt. 13, 035704 (2011). [NASA ADS] [CrossRef] [Google Scholar]
  4. T. Colomb, S. Krivec, H. Hutter, A. A. Akatay, N. Pavillon, F. Montfort, E. Cuche, J. Kühn, C. Depeursinge, and Yves Emery, “Digital holographic reflectometry,” Opt. Express 18, 3719–3731 (2010). [NASA ADS] [CrossRef] [Google Scholar]
  5. C. Minetti, N. Callens, G. Coupier, T. Podgorski, and F. Dubois, “Fast measurements of concentration profiles inside deformable objects in microflows with reduced spatial coherence digital holography,” Appl. Optics 47, 5305–5314 (2008). [NASA ADS] [CrossRef] [Google Scholar]
  6. D. D. Aguayo, F. M. Santoyo, M. H. De la Torre-I, M. D. Salas-Araiza, C. Caloca-Mendez, and D. A. G. Hernandez, “Insect wing deformation measurements using high speed digital holographic interferometry,” Opt. Express 18, 5661–5667 (2010). [NASA ADS] [CrossRef] [Google Scholar]
  7. A. Ogiwara, M. Watanabe, T. Mabuchi, and F. Kobayashi, “Formation of holographic memory for defect tolerance in optically reconfigurable gate arrays,” Appl. Optics 49, 4255–4261 (2010). [NASA ADS] [CrossRef] [Google Scholar]
  8. M. Kanka, R. Riesenberg, and H. J. Kreuzer, “Reconstruction of high-resolution holographic microscopic images,” Opt. Lett. 34, 1162–1164 (2009). [NASA ADS] [CrossRef] [Google Scholar]
  9. E. Cuche, P. Marquet, and C. Depeursinge, “Simultaneous amplitude-contrast and quantitative phase-contrast microscopy by numerical reconstruction of Fresnel off-axis holograms,” Appl. Optics 38, 6994–7001 (1999). [NASA ADS] [CrossRef] [Google Scholar]
  10. N. Verrier, C. Remacha, M. Brunel, D. Lebrun, and S. Coëtmellec, “Micropipe flow visualization using digital in-line holographic microscopy,” Opt. Express 18, 7807–7819 (2010). [NASA ADS] [CrossRef] [Google Scholar]
  11. F. C. Cheong, B. Sun, R. Dreyfus, J. Amato-Grill, K. Xiao, L. Dixon and D. G. Grier, “Flow visualization and flow cytometry with holographic video microscopy,” Opt. Express 17, 13071–13079 (2009). [NASA ADS] [CrossRef] [Google Scholar]
  12. J. F. Restrepo, and J. Garcia-Sucerquia, “Diffraction-based modeling of high-numerical-aperture in-line lensless holograms,” Appl. Optics 50, 1745–1752 (2011). [NASA ADS] [CrossRef] [Google Scholar]
  13. S. Coëtmellec, N. Verrier, M. Brunel, and D. Lebrun, “General formulation of digital in-line holography from correlation with a chirplet function,” J. Europ. Opt. Soc. Rap. Public. 5, 10027 (2010). [CrossRef] [Google Scholar]
  14. A. El Mallahi, and F. Dubois, “Dependency and precision of the refocusing criterion based on amplitude analysis in digital holographic microscopy,” Opt. Express 19, 6684–6698 (2011). [NASA ADS] [CrossRef] [Google Scholar]
  15. I. Moon, F. Yi, and B. Javidi, “Automated Three-Dimensional Microbial Sensing and Recognition Using Digital Holography and Statistical Sampling,” Sensors 10, 8437–8451 (2010). [NASA ADS] [CrossRef] [Google Scholar]
  16. M. Kanka, R. Riesenberg, P. Petruck, and C. Graulig, “High resolution (NA=0.8) in lensless in-line holographic microscopy with glass sample carriers,” Opt. Lett. 36, 3651–3653 (2011). [NASA ADS] [CrossRef] [Google Scholar]
  17. J. Garcia-Sucerquia, W. Xu, M. H. Jericho, and H. J. Kreuzer, “Immersion digital in-line holographic microscopy,” Opt. Lett. 31, 1211–1213 (2006). [NASA ADS] [CrossRef] [Google Scholar]
  18. V. Mico, and Z. Zalevsky, “Superresolved digital in-line holoraphic microscopy for high-resolution lensless biological imaging,” J. Biomed. Optics 15, 046027 (2010). [NASA ADS] [CrossRef] [Google Scholar]
  19. M. Mir, H. Ding, Z. Wang, J. Reedy, K. Tangella, and G. Popescu, “Blood screening using diffraction phase cytometry,” J. Biomed. Optics 15, 027016 (2010). [NASA ADS] [CrossRef] [Google Scholar]
  20. P. Amsler, O. Stetzer, M. Schnaiter, E. Hesse, S. Benz, O. Moehler, and U. Lohmann, “Ice crystal habits from cloud chamber studies obtained by in-line holographic microscopy related to depolarization measurements,” Appl. Optics 48, 5811–5822 (2009). [NASA ADS] [CrossRef] [Google Scholar]
  21. P. Ferraro, A. Wax, and Z. Zalevsky, “Coherent Light Microscopy,” Chapter 1 Point Source Digital In-Line Holographic Microscopy, Springer Series in Surface Sciences 46, Springer-Verlag Berlin Heidelberg (2011). [Google Scholar]
  22. J. W. Goodman, “Introduction to Fourier Optics,” Mc Graw-Hill Book Company, (1968). [Google Scholar]
  23. B. Rappaz, A. Barbul, Y. Emery, R. Korenstein, C. Depeursinge, P. J. Magistretti, and P. Marquet, “Comparative study of human erythrocytes by digital holographic microscopy, confocal microscopy, and impedance volume analyzer,” Cytometry Part A 73, 895–903 (2008). [CrossRef] [Google Scholar]
  24. W. Groner, N. Mohandas, and M. Bessis “New Optical Technique for Measuring Erythrocyte Deformability with the Ektacytometer,” Clin. Chem. 26 (10), 1435–1442 (1980). [CrossRef] [Google Scholar]
  25. F. M. Gaffney Brit, “Experimental Haemolytic Anaemia with Particular Reference to the Corpuscular Haemoglobin Concentrations of the Erythrocytes,” J. Haematology 3, 311 (1957). [CrossRef] [Google Scholar]
  26. W. Xu, M. H. Jericho, I. A. Meinertzhagen, and H. J. Kreuzer, “Digital In-Line Holography of Microspheres,” Appl. Optics 41, 5367–5375 (2002). [NASA ADS] [CrossRef] [Google Scholar]
  27. S. Seo, T. Su, A. Erlinger, D. Tseng, and A. Ozcan, “On-Chip Cytometry Using Lensless Digital Holography,” in Conference on Lasers and Electro-Optics/International Quantum Electronics Conference, OSA Technical Digest (CD) (Optical Society of America, Washington, 2009). [Google Scholar]
  28. J. Garcia-Sucerquia, W. Xu, S. K. Jericho, P. Klages, M. H. Jericho, and H. J. Kreuzer, “Digital in-line holographic microscopy,” Appl. Optics 45, 836–850 (2006). [NASA ADS] [CrossRef] [Google Scholar]
  29. S. K. Jericho, P. Klages, J. Nadeau, E. M. Dumas, M. H. Jericho, and H. J. Kreuzer, “In-line digital holographic microscopy for terrestrial and exobiological research,” Planet. Space Sci. 58, 701–705 (2010). [NASA ADS] [CrossRef] [Google Scholar]
  30. U. Schnars, and W. P. O. Juptner, “Digital recording and numerical reconstruction of holograms,” Meas. Sci. Technol. 13, 85–101, (2002). [Google Scholar]
  31. www.optiwave.com [Google Scholar]
  32. L. Repetto, E. Piano, and C. Pontiggia, “Lensless digital holographic microscope with light emitting diode illumination,” Opt. Lett. 29, 1132–1134 (2004). [NASA ADS] [CrossRef] [Google Scholar]

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