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Terahertz deconvolution |
Optics Express, Vol. 20, Issue 25, pp. 27230-27241 (2012)
http://dx.doi.org/10.1364/OE.20.027230
Acrobat PDF (1213 KB)
Abstract
The ability to retrieve information from different layers within a stratified sample using terahertz pulsed reflection imaging and spectroscopy has traditionally been resolution limited by the pulse width available. In this paper, a deconvolution algorithm is presented which circumvents this resolution limit, enabling deep sub-wavelength and sub-pulse width depth resolution. The algorithm is explained through theoretical investigation, and demonstrated by reconstructing signals reflected from boundaries in stratified materials that cannot be resolved directly from the unprocessed time-domain reflection signal. Furthermore, the deconvolution technique has been used to recreate sub-surface images from a stratified sample: imaging the reverse side of a piece of paper.
© 2012 OSA
1. Introduction
J. Takayanagi, H. Jinno, S. Ichino, K. Suizu, M. Yamashita, T. Ouchi, S. Kasai, H. Ohtake, H. Uchida, N. Nishizawa, and K. Kawase, “High-resolution time-of-flight terahertz tomography using a femtosecond fiber laser,” Opt. Express 17(9), 7533–7539 (2009). [CrossRef] [PubMed]
Y. Chen, S. Huang, and E. Pickwell-MacPherson, “Frequency-wavelet domain deconvolution for terahertz reflection imaging and spectroscopy,” Opt. Express 18(2), 1177–1190 (2010). [CrossRef] [PubMed]
2. Theory
2.1 Data sampling
2.2 Time domain padding
2.3 Denoising
Y. Chen, S. Huang, and E. Pickwell-MacPherson, “Frequency-wavelet domain deconvolution for terahertz reflection imaging and spectroscopy,” Opt. Express 18(2), 1177–1190 (2010). [CrossRef] [PubMed]
R. K. Galvão, S. Hadjiloucas, A. Zafiropoulos, G. C. Walker, J. W. Bowen, and R. Dudley, “Optimization of Apodization Functions in THz Transient Spectrometry,” Opt. Lett. 32(20), 3008–3010 (2007). [CrossRef] [PubMed]
2.4 Thresholding
J. T. Kindt and C. A. Schmuttenmaer, “Far-infrared dielectric properties of polar liquids probed by femtosecond pulsed terahertz spectroscopy,” J. Phys. Chem. 100(24), 10373–10379 (1996). [CrossRef]
2.5 Summary
3. Experimental results
3.1 Reflection spectroscopy
3.2 Reflection imaging
4. Discussion
5. Conclusion
Acknowledgments
References and links
J. Takayanagi, H. Jinno, S. Ichino, K. Suizu, M. Yamashita, T. Ouchi, S. Kasai, H. Ohtake, H. Uchida, N. Nishizawa, and K. Kawase, “High-resolution time-of-flight terahertz tomography using a femtosecond fiber laser,” Opt. Express 17(9), 7533–7539 (2009). [CrossRef] [PubMed] | |
Y. Chen, S. Huang, and E. Pickwell-MacPherson, “Frequency-wavelet domain deconvolution for terahertz reflection imaging and spectroscopy,” Opt. Express 18(2), 1177–1190 (2010). [CrossRef] [PubMed] | |
P. R. Griffiths and J. A. de Haseth, Fourier Transform Infrared Spectrometry (New York, Wiley 1986), Chap. 3. | |
R. N. Bracewell, The Fourier Transform and its Applications (New York: London: McGraw-Hill 1978) Chap. 18. | |
G. C. Walker, J. B. Jackson, W. Matthews, J. W. Bowen, J. Labaune, G. A. Mourou, J. F. Whitaker, M. Menu, and I. Hodder, “Seeing Through Walls: Sub-surface imaging at Çatalhöyük”, Presented at the Raman and Infrared User Group Meeting, Barcelona, March 2012. | |
E. Berry, R. D. Boyle, A. J. Fitzgerald, and J. W. Handley, Computer Vision Beyond the Visible Spectrum, (Springer 2004), Chap. 9. | |
R. K. Galvão, S. Hadjiloucas, A. Zafiropoulos, G. C. Walker, J. W. Bowen, and R. Dudley, “Optimization of Apodization Functions in THz Transient Spectrometry,” Opt. Lett. 32(20), 3008–3010 (2007). [CrossRef] [PubMed] | |
J. T. Kindt and C. A. Schmuttenmaer, “Far-infrared dielectric properties of polar liquids probed by femtosecond pulsed terahertz spectroscopy,” J. Phys. Chem. 100(24), 10373–10379 (1996). [CrossRef] |
OCIS Codes
(070.0070) Fourier optics and signal processing : Fourier optics and signal processing
(100.0100) Image processing : Image processing
ToC Category:
Image Processing
History
Original Manuscript: September 10, 2012
Revised Manuscript: November 8, 2012
Manuscript Accepted: November 9, 2012
Published: November 19, 2012
Citation
Gillian C. Walker, John W. Bowen, Julien Labaune, J-Bianca Jackson, Sillas Hadjiloucas, John Roberts, Gerard Mourou, and Michel Menu, "Terahertz deconvolution," Opt. Express 20, 27230-27241 (2012)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-20-25-27230
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References
- J. Takayanagi, H. Jinno, S. Ichino, K. Suizu, M. Yamashita, T. Ouchi, S. Kasai, H. Ohtake, H. Uchida, N. Nishizawa, and K. Kawase, “High-resolution time-of-flight terahertz tomography using a femtosecond fiber laser,” Opt. Express17(9), 7533–7539 (2009). [CrossRef] [PubMed]
- Y. Chen, S. Huang, and E. Pickwell-MacPherson, “Frequency-wavelet domain deconvolution for terahertz reflection imaging and spectroscopy,” Opt. Express18(2), 1177–1190 (2010). [CrossRef] [PubMed]
- P. R. Griffiths and J. A. de Haseth, Fourier Transform Infrared Spectrometry (New York, Wiley 1986), Chap. 3.
- R. N. Bracewell, The Fourier Transform and its Applications (New York: London: McGraw-Hill 1978) Chap. 18.
- G. C. Walker, J. B. Jackson, W. Matthews, J. W. Bowen, J. Labaune, G. A. Mourou, J. F. Whitaker, M. Menu, and I. Hodder, “Seeing Through Walls: Sub-surface imaging at Çatalhöyük”, Presented at the Raman and Infrared User Group Meeting, Barcelona, March 2012.
- E. Berry, R. D. Boyle, A. J. Fitzgerald, and J. W. Handley, Computer Vision Beyond the Visible Spectrum, (Springer 2004), Chap. 9.
- R. K. Galvão, S. Hadjiloucas, A. Zafiropoulos, G. C. Walker, J. W. Bowen, and R. Dudley, “Optimization of Apodization Functions in THz Transient Spectrometry,” Opt. Lett.32(20), 3008–3010 (2007). [CrossRef] [PubMed]
- J. T. Kindt and C. A. Schmuttenmaer, “Far-infrared dielectric properties of polar liquids probed by femtosecond pulsed terahertz spectroscopy,” J. Phys. Chem.100(24), 10373–10379 (1996). [CrossRef]
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