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Super-resolution imaging via spatiotemporal frequency shifting and coherent detection |
Optics Express, Vol. 19, Issue 22, pp. 22350-22357 (2011)
http://dx.doi.org/10.1364/OE.19.022350
Acrobat PDF (1896 KB)
Abstract
Diffraction limit is manifested in the loss of high spatial frequency information that results from decay of evanescent waves. As a result, conventional far-field optics yields no information about an object’s subwavelength features. Here we propose a novel approach to recovering evanescent waves in the far field, thereby enabling subwavelength-resolved imaging and spatial spectroscopy. Our approach relies on shifting the frequency and the wave vector of near-field components via scattering on acoustic phonons. This process effectively removes the spatial frequency cut-off for unambiguous far field detection. This technique can be adapted for digital holography, making it possible to perform phase-sensitive subwavelength imaging. We discuss the implementation of such a system in the mid-IR and THz bands, with possible extension to other spectral regions.
© 2011 OSA
1. Introduction
M. E. Testorf and M. A. Fiddy, “Superresolution Imaging Revisited,” Adv. Imag. Electron. Phys. 163, 165–218 (2010). [CrossRef]
W. Lukosz, “Optical Systems with Resolving Powers Exceeding the Classical Limit II,” J. Opt. Soc. A. 57, 932 (1967). [CrossRef]
M. E. Testorf and M. A. Fiddy, “Superresolution Imaging Revisited,” Adv. Imag. Electron. Phys. 163, 165–218 (2010). [CrossRef]
W. Lukosz, “Optical Systems with Resolving Powers Exceeding the Classical Limit II,” J. Opt. Soc. A. 57, 932 (1967). [CrossRef]
Y. Kuznetsova, A. Neumann, and S. R. Brueck, “Imaging interferometric microscopy-approaching the linear systems limits of optical resolution.” Opt. Express 15, 6651–63 (2007). [CrossRef] [PubMed]
M. Paturzo, F. Merola, S. Grilli, S. De Nicola, a. Finizio, and P. Ferraro, “Super-resolution in digital holography by a two-dimensional dynamic phase grating,” Opt. Express 16(21), 17107–17118 (2008). [CrossRef] [PubMed]
S. Durant, Z. Liu, J. M. Steele, and X. Zhang, “Theory of the transmission properties of an optical far-field superlens for imaging beyond the diffraction limit,” J. Opt. Soc. Am. B 23, 2383–2392 (2006). [CrossRef]
B. Dragnea, J. Preusser, J. M. Szarko, S. R. Leone, and W. D. J. Hinsberg, “Pattern characterization of deep-ultraviolet photoresists by near-field infrared microscopy,” J. Vac. Sci. Technol. B 19, 142–152 (2001). [CrossRef]
N. C. J. van der Valk and P. C. M. Planken, “Electro-optic detection of subwavelength terahertz spot sizes in the near field of a metal tip,” Appl. Phys. Lett. 81, 1558–1560 (2002). [CrossRef]
S. Durant, Z. Liu, J. M. Steele, and X. Zhang, “Theory of the transmission properties of an optical far-field superlens for imaging beyond the diffraction limit,” J. Opt. Soc. Am. B 23, 2383–2392 (2006). [CrossRef]
W. Lukosz, “Optical Systems with Resolving Powers Exceeding the Classical Limit II,” J. Opt. Soc. A. 57, 932 (1967). [CrossRef]
D. Mendlovic, A. W. Lohmann, N. Konforti, I. Kiryuschev, and Z. Zalevsky, “One-dimensional superresolution optical system for temporally restricted objects,” Appl. Opt. 36, 2353–2359 (1997). [CrossRef] [PubMed]
A. Shemer, D. Mendlovic, Z. Zalevsky, J. Garcia, and P. Garcia Martinez, “Superresolving optical system with time multiplexing and computer decoding,” Appl. Opt. 38, 7245–7251 (1999). [CrossRef]
2. Scattering from a phonon grating: general description
3. Super-resolved fingerprinting: numerical simulation
R. Lanz and P. Muralt, “Bandpass filters for 8 ghz using solidly mounted bulk acoustic wave resonators,” IEEE Trans. Ultrasonic. Ferroelec. Freq. Control 52, 938 – 948 (2005). [CrossRef]
M. B. Assouar, O. Elmazria, P. Kirsch, P. Alnot, V. Mortet, and C. Tiusan, “High-frequency surface acoustic wave devices based on aln/diamond layered structure realized using e-beam lithography,” J. Appl. Phys. 101, 114507 (2007). [CrossRef]
V. A. Podolskiy and E. E. Narimanov, “Near-sighted superlens,” Opt. Lett. 30, 75–77 (2005). [CrossRef] [PubMed]
N. I. Zheludev, “What diffraction limit?” Nature Mat. 7, 420–2 (2008). [CrossRef]
4. Super-resolved digital holography
J. W. Goodman and R. W. Lawrence, “Digital image formation from electronically detected holograms,” Appl. Phys. Lett. 11, 77–79 (1967). [CrossRef]
E. Cuche, P. Marquet, and C. Depeursinge, “Simultaneous amplitude-contrast and quantitative phase-contrast microscopy by numerical reconstruction of fresnel off-axis holograms,” Appl. Opt. 38, 6994–7001 (1999). [CrossRef]
E. Cuche, P. Marquet, and C. Depeursinge, “Simultaneous amplitude-contrast and quantitative phase-contrast microscopy by numerical reconstruction of fresnel off-axis holograms,” Appl. Opt. 38, 6994–7001 (1999). [CrossRef]
M. Paturzo, F. Merola, S. Grilli, S. De Nicola, a. Finizio, and P. Ferraro, “Super-resolution in digital holography by a two-dimensional dynamic phase grating,” Opt. Express 16(21), 17107–17118 (2008). [CrossRef] [PubMed]
S. Alexandrov, T. Hillman, T. Gutzler, and D. Sampson, “Synthetic Aperture Fourier Holographic Optical Microscopy,” Phys. Rev. Lett. 97, 168,102 (2006). [CrossRef]
C. Liu, Z. Liu, F. Bo, Y. Wang, and J. Zhu, “Super-resolution digital holographic imaging method,” Appl. Phys. Lett. 81, 3143 (2002). [CrossRef]
F. Le Clerc, L. Collot, and M. Gross, “Numerical heterodyne holography with two-dimensional photodetector arrays,” Opt. Lett. 25, 716–718 (2000). [CrossRef]
5. Potential improvements of the proposed system and extension to higher frequencies
I. Yamaguchi and T. Zhang, “Phase-shifting digital holography,” Opt. Lett. 22, 1268–1270 (1997). [CrossRef] [PubMed]
J. B. Pendry, “Negative refraction makes a perfect lens,” Phys. Rev. Lett. 85, 3966–3969 (2000). [CrossRef] [PubMed]
6. Conclusion
Acknowledgments
References and links
M. E. Testorf and M. A. Fiddy, “Superresolution Imaging Revisited,” Adv. Imag. Electron. Phys. 163, 165–218 (2010). [CrossRef] | |
W. Lukosz, “Optical Systems with Resolving Powers Exceeding the Classical Limit II,” J. Opt. Soc. A. 57, 932 (1967). [CrossRef] | |
Y. Kuznetsova, A. Neumann, and S. R. Brueck, “Imaging interferometric microscopy-approaching the linear systems limits of optical resolution.” Opt. Express 15, 6651–63 (2007). [CrossRef] [PubMed] | |
M. G. L. Gustafsson, “Nonlinear structured-illumination microscopy: wide-field fluorescence imaging with theoretically unlimited resolution,” Proc. Natl. Acad. Scie. U.S.A. 102, 13,081–6 (2005). | |
M. Paturzo, F. Merola, S. Grilli, S. De Nicola, a. Finizio, and P. Ferraro, “Super-resolution in digital holography by a two-dimensional dynamic phase grating,” Opt. Express 16(21), 17107–17118 (2008). [CrossRef] [PubMed] | |
S. Durant, Z. Liu, J. M. Steele, and X. Zhang, “Theory of the transmission properties of an optical far-field superlens for imaging beyond the diffraction limit,” J. Opt. Soc. Am. B 23, 2383–2392 (2006). [CrossRef] | |
B. Dragnea, J. Preusser, J. M. Szarko, S. R. Leone, and W. D. J. Hinsberg, “Pattern characterization of deep-ultraviolet photoresists by near-field infrared microscopy,” J. Vac. Sci. Technol. B 19, 142–152 (2001). [CrossRef] | |
B. Knoll and F. Keilmann, “Near-field probing of vibrational absorption for chemical microscopy,” Nature 399, 134–137 (1999). [CrossRef] | |
N. C. J. van der Valk and P. C. M. Planken, “Electro-optic detection of subwavelength terahertz spot sizes in the near field of a metal tip,” Appl. Phys. Lett. 81, 1558–1560 (2002). [CrossRef] | |
D. Mendlovic, A. W. Lohmann, N. Konforti, I. Kiryuschev, and Z. Zalevsky, “One-dimensional superresolution optical system for temporally restricted objects,” Appl. Opt. 36, 2353–2359 (1997). [CrossRef] [PubMed] | |
A. Shemer, D. Mendlovic, Z. Zalevsky, J. Garcia, and P. Garcia Martinez, “Superresolving optical system with time multiplexing and computer decoding,” Appl. Opt. 38, 7245–7251 (1999). [CrossRef] | |
R. W. Boyd, Nonlinear Optics (Academic Press, San Diego, 2003), 2nd ed. | |
R. Lanz and P. Muralt, “Bandpass filters for 8 ghz using solidly mounted bulk acoustic wave resonators,” IEEE Trans. Ultrasonic. Ferroelec. Freq. Control 52, 938 – 948 (2005). [CrossRef] | |
M. B. Assouar, O. Elmazria, P. Kirsch, P. Alnot, V. Mortet, and C. Tiusan, “High-frequency surface acoustic wave devices based on aln/diamond layered structure realized using e-beam lithography,” J. Appl. Phys. 101, 114507 (2007). [CrossRef] | |
V. A. Podolskiy and E. E. Narimanov, “Near-sighted superlens,” Opt. Lett. 30, 75–77 (2005). [CrossRef] [PubMed] | |
N. I. Zheludev, “What diffraction limit?” Nature Mat. 7, 420–2 (2008). [CrossRef] | |
Acoustooptic diffraction efficiency, and hence the signal-to-noise ratio varies as 1/q. | |
J. W. Goodman and R. W. Lawrence, “Digital image formation from electronically detected holograms,” Appl. Phys. Lett. 11, 77–79 (1967). [CrossRef] | |
U. Schnars and W. Jüptner, “Direct recording of holograms by a ccd target and numerical reconstruction,” Appl. Opt. 33, 179181 (1994). [CrossRef] | |
E. Cuche, P. Marquet, and C. Depeursinge, “Simultaneous amplitude-contrast and quantitative phase-contrast microscopy by numerical reconstruction of fresnel off-axis holograms,” Appl. Opt. 38, 6994–7001 (1999). [CrossRef] | |
S. Alexandrov, T. Hillman, T. Gutzler, and D. Sampson, “Synthetic Aperture Fourier Holographic Optical Microscopy,” Phys. Rev. Lett. 97, 168,102 (2006). [CrossRef] | |
C. Liu, Z. Liu, F. Bo, Y. Wang, and J. Zhu, “Super-resolution digital holographic imaging method,” Appl. Phys. Lett. 81, 3143 (2002). [CrossRef] | |
F. Le Clerc, L. Collot, and M. Gross, “Numerical heterodyne holography with two-dimensional photodetector arrays,” Opt. Lett. 25, 716–718 (2000). [CrossRef] | |
I. Yamaguchi and T. Zhang, “Phase-shifting digital holography,” Opt. Lett. 22, 1268–1270 (1997). [CrossRef] [PubMed] | |
J. B. Pendry, “Negative refraction makes a perfect lens,” Phys. Rev. Lett. 85, 3966–3969 (2000). [CrossRef] [PubMed] |
OCIS Codes
(230.1040) Optical devices : Acousto-optical devices
(300.6340) Spectroscopy : Spectroscopy, infrared
ToC Category:
Optomechanics
History
Original Manuscript: June 20, 2011
Revised Manuscript: October 11, 2011
Manuscript Accepted: October 17, 2011
Published: October 24, 2011
Virtual Issues
Vol. 6, Iss. 11 Virtual Journal for Biomedical Optics
Collective Phenomena (2011) Optics Express
Citation
Leonid Alekseyev, Evgenii Narimanov, and Jacob Khurgin, "Super-resolution imaging via spatiotemporal frequency shifting and coherent detection," Opt. Express 19, 22350-22357 (2011)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-19-22-22350
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References
- M. E. Testorf and M. A. Fiddy, “Superresolution Imaging Revisited,” Adv. Imag. Electron. Phys.163, 165–218 (2010). [CrossRef]
- W. Lukosz, “Optical Systems with Resolving Powers Exceeding the Classical Limit II,” J. Opt. Soc. A.57, 932 (1967). [CrossRef]
- Y. Kuznetsova, A. Neumann, and S. R. Brueck, “Imaging interferometric microscopy-approaching the linear systems limits of optical resolution.” Opt. Express15, 6651–63 (2007). [CrossRef] [PubMed]
- M. G. L. Gustafsson, “Nonlinear structured-illumination microscopy: wide-field fluorescence imaging with theoretically unlimited resolution,” Proc. Natl. Acad. Scie. U.S.A.102, 13,081–6 (2005).
- M. Paturzo, F. Merola, S. Grilli, S. De Nicola, a. Finizio, and P. Ferraro, “Super-resolution in digital holography by a two-dimensional dynamic phase grating,” Opt. Express16(21), 17107–17118 (2008). [CrossRef] [PubMed]
- S. Durant, Z. Liu, J. M. Steele, and X. Zhang, “Theory of the transmission properties of an optical far-field superlens for imaging beyond the diffraction limit,” J. Opt. Soc. Am. B23, 2383–2392 (2006). [CrossRef]
- B. Dragnea, J. Preusser, J. M. Szarko, S. R. Leone, and W. D. J. Hinsberg, “Pattern characterization of deep-ultraviolet photoresists by near-field infrared microscopy,” J. Vac. Sci. Technol. B19, 142–152 (2001). [CrossRef]
- B. Knoll and F. Keilmann, “Near-field probing of vibrational absorption for chemical microscopy,” Nature399, 134–137 (1999). [CrossRef]
- N. C. J. van der Valk and P. C. M. Planken, “Electro-optic detection of subwavelength terahertz spot sizes in the near field of a metal tip,” Appl. Phys. Lett.81, 1558–1560 (2002). [CrossRef]
- D. Mendlovic, A. W. Lohmann, N. Konforti, I. Kiryuschev, and Z. Zalevsky, “One-dimensional superresolution optical system for temporally restricted objects,” Appl. Opt.36, 2353–2359 (1997). [CrossRef] [PubMed]
- A. Shemer, D. Mendlovic, Z. Zalevsky, J. Garcia, and P. Garcia Martinez, “Superresolving optical system with time multiplexing and computer decoding,” Appl. Opt.38, 7245–7251 (1999). [CrossRef]
- R. W. Boyd, Nonlinear Optics (Academic Press, San Diego, 2003), 2nd ed.
- A. Korpel, Acoustooptics (Marcel Dekker, New York, 1989).
- R. Lanz and P. Muralt, “Bandpass filters for 8 ghz using solidly mounted bulk acoustic wave resonators,” IEEE Trans. Ultrasonic. Ferroelec. Freq. Control52, 938 – 948 (2005). [CrossRef]
- M. B. Assouar, O. Elmazria, P. Kirsch, P. Alnot, V. Mortet, and C. Tiusan, “High-frequency surface acoustic wave devices based on aln/diamond layered structure realized using e-beam lithography,” J. Appl. Phys.101, 114507 (2007). [CrossRef]
- V. A. Podolskiy and E. E. Narimanov, “Near-sighted superlens,” Opt. Lett.30, 75–77 (2005). [CrossRef] [PubMed]
- N. I. Zheludev, “What diffraction limit?” Nature Mat.7, 420–2 (2008). [CrossRef]
- Acoustooptic diffraction efficiency, and hence the signal-to-noise ratio varies as 1/q.
- J. W. Goodman and R. W. Lawrence, “Digital image formation from electronically detected holograms,” Appl. Phys. Lett.11, 77–79 (1967). [CrossRef]
- U. Schnars and W. Jüptner, “Direct recording of holograms by a ccd target and numerical reconstruction,” Appl. Opt.33, 179181 (1994). [CrossRef]
- E. Cuche, P. Marquet, and C. Depeursinge, “Simultaneous amplitude-contrast and quantitative phase-contrast microscopy by numerical reconstruction of fresnel off-axis holograms,” Appl. Opt.38, 6994–7001 (1999). [CrossRef]
- S. Alexandrov, T. Hillman, T. Gutzler, and D. Sampson, “Synthetic Aperture Fourier Holographic Optical Microscopy,” Phys. Rev. Lett.97, 168,102 (2006). [CrossRef]
- C. Liu, Z. Liu, F. Bo, Y. Wang, and J. Zhu, “Super-resolution digital holographic imaging method,” Appl. Phys. Lett.81, 3143 (2002). [CrossRef]
- F. Le Clerc, L. Collot, and M. Gross, “Numerical heterodyne holography with two-dimensional photodetector arrays,” Opt. Lett.25, 716–718 (2000). [CrossRef]
- I. Yamaguchi and T. Zhang, “Phase-shifting digital holography,” Opt. Lett.22, 1268–1270 (1997). [CrossRef] [PubMed]
- J. B. Pendry, “Negative refraction makes a perfect lens,” Phys. Rev. Lett.85, 3966–3969 (2000). [CrossRef] [PubMed]
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