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Optimized electron beam writing strategy for fabricating computer-generated holograms based on an effective medium approach |
Optics Express, Vol. 19, Issue 9, pp. 8684-8692 (2011)
http://dx.doi.org/10.1364/OE.19.008684
Acrobat PDF (1078 KB)
Abstract
Recent research revealed that using the effective medium approach to generate arbitrary multi-phase level computer-generated holograms is a promising alternative to the conventional multi-height level approach. Although this method reduces the fabrication effort using one-step binary lithography, the subwavelength patterning process remains a huge challenge, particularly for large-scale applications. To reduce the writing time on variable shaped electron beam writing systems, an optimized strategy based on an appropriate reshaping of the binary subwavelength structures is illustrated. This strategy was applied to fabricate a three-phase level CGH in the visible range, showing promising experimental results.
© 2011 OSA
1. Introduction
E.-B. Kley, L.-C. Wittig, M. Cumme, U. D. Zeitner, and P. Dannberg, “Fabrication and properties of refractive micro-optical beam-shaping elements,” Proc. SPIE 3879, 20–31 (1999). [CrossRef]
A. Schilling, H. P. Herzig, L. Stauffer, U. Vokinger, and M. Rossi, “Efficient beam shaping of linear, high-power diode lasers by use of micro-optics,” Appl. Opt. 40(32), 5852–5859 (2001). [CrossRef]
E.-B. Kley, “Continuous profile writing by electron and optical lithography,” Microeltron. Eng. 34(3-4), 261–298 (1997). [CrossRef]
J. M. Miller, M. R. Taghizadeh, J. Turunen, and N. Ross, “Multilevel-grating array generators: fabrication error analysis and experiments,” Appl. Opt. 32(14), 2519–2525 (1993). [CrossRef] [PubMed]
P. Blair, M. R. Taghizadeh, W. Parkes, and C. D. W. Wilkinson, “High-efficiency binary fan-out gratings by modulation of a high-frequency carrier grating,” Appl. Opt. 34(14), 2406–2413 (1995). [CrossRef] [PubMed]
E. Noponen and J. Turunen, “Binary high-frequency-carrier diffractive optical elements: electromagnetic theory,” J. Opt. Soc. Am. A 11(3), 1097–1109 (1994). [CrossRef]
E. Noponen and J. Turunen, “Binary high-frequency-carrier diffractive optical elements: electromagnetic theory,” J. Opt. Soc. Am. A 11(3), 1097–1109 (1994). [CrossRef]
H. J. Hyvärinen, P. Karvinen, and J. Turunen, “Polarization insensitive resonance-domain blazed binary gratings,” Opt. Express 18(13), 13444–13450 (2010). [CrossRef] [PubMed]
W. Yu, K. Takahara, T. Konishi, T. Yotsuya, and Y. Ichioka, “Fabrication of multilevel phase computer-generated hologram elements based on effective medium theory,” Appl. Opt. 39(20), 3531–3536 (2000). [CrossRef]
W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Design of binary subwavelength multi-phase level computer generated holograms,” Opt. Lett. 35(5), 676–678 (2010). [CrossRef] [PubMed]
W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Design and fabrication of a highly off-axis binary multi-phase level computer-generated hologram based on an effective medium approach,” Proc. SPIE 7927, 792710 , 792710-7 (2011). [CrossRef]
2. Effective medium approach for CGH structures
W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Design of binary subwavelength multi-phase level computer generated holograms,” Opt. Lett. 35(5), 676–678 (2010). [CrossRef] [PubMed]
M. G. Moharam, E. B. Grann, D. A. Pommet, and T. K. Gaylord, “Formulation for stable and efficient implementation of the rigorous coupled-wave analysis of binary gratings,” J. Opt. Soc. Am. A 12(5), 1068–1076 (1995). [CrossRef]
L. Li, “New formulation of the Fourier modal method for crossed surface-relief gratings,” J. Opt. Soc. Am. A 14(10), 2758–2767 (1997). [CrossRef]
3. Improvement in electron beam writing speed
W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Multi-phase-level diffractive elements realized by binary effective medium patterns,” Proc. SPIE 7591, 75910Z , 75910Z-7 (2010). [CrossRef]
4. Binary subwavelength CGH design
F. Wyrowski and O. Bryngdahl, “Digital holography as part of diffractive optics,” Rep. Prog. Phys. 54(12), 1481–1571 (1991). [CrossRef]
| BSWS pattern | 2D filling factor | Minimal feature size [nm] |
|---|---|---|
| hole | 0.57 | 52 |
| pillar | 0.61 | 33 |
| groove TE | 0.475 | 71 |
| groove TM | 0.65 | 98 |
| ridge TE | 0.475 | 79 |
| ridge TM | 0.65 | 52 |
| BSWS pattern | Writing time [s] |
|---|---|
| hole (continuous-phase level) | 887.3 |
| hole | 348.3 |
| pillar | 687.7 |
| groove | 107.2 |
| ridge | 112.5 |
5. Experimental results
| Far field region | Measured efficiency [%] | theoretical efficiency [%] |
|---|---|---|
| TE | ||
| twin-image | 2.5 | 1.6 |
| 0. order | 1.5 | 0 |
| signal field | 33 | 48.5 |
| TM | ||
| twin-image | 5 | 4.9 |
| 0. order | 11 | 6.1 |
| signal field | 25 | 42.8 |
F. Hudelist, A. J. Waddie, and M. R. Taghizadeh, “Analysis of crossed gratings with large periods and small feature sizes by stitching of the electromagnetic field,” J. Opt. Soc. Am. A 26(12), 2648–2653 (2009). [CrossRef]
6. Conclusion
Acknowledgments
References and links
E.-B. Kley, L.-C. Wittig, M. Cumme, U. D. Zeitner, and P. Dannberg, “Fabrication and properties of refractive micro-optical beam-shaping elements,” Proc. SPIE 3879, 20–31 (1999). [CrossRef] | |
A. Schilling, H. P. Herzig, L. Stauffer, U. Vokinger, and M. Rossi, “Efficient beam shaping of linear, high-power diode lasers by use of micro-optics,” Appl. Opt. 40(32), 5852–5859 (2001). [CrossRef] | |
E.-B. Kley, “Continuous profile writing by electron and optical lithography,” Microeltron. Eng. 34(3-4), 261–298 (1997). [CrossRef] | |
J. M. Miller, M. R. Taghizadeh, J. Turunen, and N. Ross, “Multilevel-grating array generators: fabrication error analysis and experiments,” Appl. Opt. 32(14), 2519–2525 (1993). [CrossRef] [PubMed] | |
M. Banasch, L.-C. Wittig, and E.-B. Kley, “Fabrication tolerances of binary and multilevel Computer Generated Holograms (CGHs) with submicron Pixel Size,” MOC´04–10th Microoptics Conference, Germany (2004). | |
P. Blair, M. R. Taghizadeh, W. Parkes, and C. D. W. Wilkinson, “High-efficiency binary fan-out gratings by modulation of a high-frequency carrier grating,” Appl. Opt. 34(14), 2406–2413 (1995). [CrossRef] [PubMed] | |
E. Noponen and J. Turunen, “Binary high-frequency-carrier diffractive optical elements: electromagnetic theory,” J. Opt. Soc. Am. A 11(3), 1097–1109 (1994). [CrossRef] | |
J. Mait, D. Prather, and M. Mirotznik, “Design of binary subwavelength diffractive lenses by use of zeroth-order effective-medium theory,” J. Opt. Soc. Am. A 16(5), 1157–1167 (1999). [CrossRef] | |
P. Lalanne, S. Astilean, P. Chavel, E. Cambril, and H. Launois, “Design and fabrication of blazed binary diffractive elements with sampling periods smaller than the structural cutoff,” J. Opt. Soc. Am. A 16(5), 1143–1156 (1999). [CrossRef] | |
C. Ribot, P. Lalanne, M. S. Lee, B. Loiseaux, and J. P. Huignard, “Analysis of blazed diffractive optical elements formed with artificial dielectrics,” J. Opt. Soc. Am. A 24(12), 3819–3826 (2007). [CrossRef] | |
H. J. Hyvärinen, P. Karvinen, and J. Turunen, “Polarization insensitive resonance-domain blazed binary gratings,” Opt. Express 18(13), 13444–13450 (2010). [CrossRef] [PubMed] | |
W. Yu, K. Takahara, T. Konishi, T. Yotsuya, and Y. Ichioka, “Fabrication of multilevel phase computer-generated hologram elements based on effective medium theory,” Appl. Opt. 39(20), 3531–3536 (2000). [CrossRef] | |
W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Design of binary subwavelength multi-phase level computer generated holograms,” Opt. Lett. 35(5), 676–678 (2010). [CrossRef] [PubMed] | |
W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Design and fabrication of a highly off-axis binary multi-phase level computer-generated hologram based on an effective medium approach,” Proc. SPIE 7927, 792710 , 792710-7 (2011). [CrossRef] | |
E.-B. Kley, W. Freese, T. Kämpfe, A. Tünnermann, U. D. Zeitner, D. Michaelis, and M. Erdmann, “Large-scale application of binary subwavelength structures”, Proc. IEEE/LEOS, 148–149 (2009). | |
M. G. Moharam, E. B. Grann, D. A. Pommet, and T. K. Gaylord, “Formulation for stable and efficient implementation of the rigorous coupled-wave analysis of binary gratings,” J. Opt. Soc. Am. A 12(5), 1068–1076 (1995). [CrossRef] | |
L. Li, “New formulation of the Fourier modal method for crossed surface-relief gratings,” J. Opt. Soc. Am. A 14(10), 2758–2767 (1997). [CrossRef] | |
W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Multi-phase-level diffractive elements realized by binary effective medium patterns,” Proc. SPIE 7591, 75910Z , 75910Z-7 (2010). [CrossRef] | |
R. W. Gerchberg and W. O. Saxton, “A practical algorithm for the determination of phase from image and diffraction plane pictures,” Optik (Stuttg.) 35, 227–246 (1972). | |
F. Wyrowski and O. Bryngdahl, “Digital holography as part of diffractive optics,” Rep. Prog. Phys. 54(12), 1481–1571 (1991). [CrossRef] | |
F. Hudelist, A. J. Waddie, and M. R. Taghizadeh, “Analysis of crossed gratings with large periods and small feature sizes by stitching of the electromagnetic field,” J. Opt. Soc. Am. A 26(12), 2648–2653 (2009). [CrossRef] |
OCIS Codes
(050.1380) Diffraction and gratings : Binary optics
(090.1970) Holography : Diffractive optics
(090.2890) Holography : Holographic optical elements
(050.6624) Diffraction and gratings : Subwavelength structures
ToC Category:
Holography
History
Original Manuscript: January 24, 2011
Revised Manuscript: March 18, 2011
Manuscript Accepted: March 18, 2011
Published: April 19, 2011
Citation
Wiebke Freese, Thomas Kämpfe, Werner Rockstroh, Ernst-Bernhard Kley, and Andreas Tünnermann, "Optimized electron beam writing strategy for fabricating computer-generated holograms based on an effective medium approach," Opt. Express 19, 8684-8692 (2011)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-19-9-8684
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References
- E.-B. Kley, L.-C. Wittig, M. Cumme, U. D. Zeitner, and P. Dannberg, “Fabrication and properties of refractive micro-optical beam-shaping elements,” Proc. SPIE 3879, 20–31 (1999). [CrossRef]
- A. Schilling, H. P. Herzig, L. Stauffer, U. Vokinger, and M. Rossi, “Efficient beam shaping of linear, high-power diode lasers by use of micro-optics,” Appl. Opt. 40(32), 5852–5859 (2001). [CrossRef]
- E.-B. Kley, “Continuous profile writing by electron and optical lithography,” Microeltron. Eng. 34(3-4), 261–298 (1997). [CrossRef]
- J. M. Miller, M. R. Taghizadeh, J. Turunen, and N. Ross, “Multilevel-grating array generators: fabrication error analysis and experiments,” Appl. Opt. 32(14), 2519–2525 (1993). [CrossRef] [PubMed]
- M. Banasch, L.-C. Wittig, and E.-B. Kley, “Fabrication tolerances of binary and multilevel Computer Generated Holograms (CGHs) with submicron Pixel Size,” MOC´04–10th Microoptics Conference, Germany (2004).
- P. Blair, M. R. Taghizadeh, W. Parkes, and C. D. W. Wilkinson, “High-efficiency binary fan-out gratings by modulation of a high-frequency carrier grating,” Appl. Opt. 34(14), 2406–2413 (1995). [CrossRef] [PubMed]
- E. Noponen and J. Turunen, “Binary high-frequency-carrier diffractive optical elements: electromagnetic theory,” J. Opt. Soc. Am. A 11(3), 1097–1109 (1994). [CrossRef]
- J. Mait, D. Prather, and M. Mirotznik, “Design of binary subwavelength diffractive lenses by use of zeroth-order effective-medium theory,” J. Opt. Soc. Am. A 16(5), 1157–1167 (1999). [CrossRef]
- P. Lalanne, S. Astilean, P. Chavel, E. Cambril, and H. Launois, “Design and fabrication of blazed binary diffractive elements with sampling periods smaller than the structural cutoff,” J. Opt. Soc. Am. A 16(5), 1143–1156 (1999). [CrossRef]
- C. Ribot, P. Lalanne, M. S. Lee, B. Loiseaux, and J. P. Huignard, “Analysis of blazed diffractive optical elements formed with artificial dielectrics,” J. Opt. Soc. Am. A 24(12), 3819–3826 (2007). [CrossRef]
- H. J. Hyvärinen, P. Karvinen, and J. Turunen, “Polarization insensitive resonance-domain blazed binary gratings,” Opt. Express 18(13), 13444–13450 (2010). [CrossRef] [PubMed]
- W. Yu, K. Takahara, T. Konishi, T. Yotsuya, and Y. Ichioka, “Fabrication of multilevel phase computer-generated hologram elements based on effective medium theory,” Appl. Opt. 39(20), 3531–3536 (2000). [CrossRef]
- W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Design of binary subwavelength multi-phase level computer generated holograms,” Opt. Lett. 35(5), 676–678 (2010). [CrossRef] [PubMed]
- W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Design and fabrication of a highly off-axis binary multi-phase level computer-generated hologram based on an effective medium approach,” Proc. SPIE 7927, 792710, 792710-7 (2011). [CrossRef]
- E.-B. Kley, W. Freese, T. Kämpfe, A. Tünnermann, U. D. Zeitner, D. Michaelis, and M. Erdmann, “Large-scale application of binary subwavelength structures”, Proc. IEEE/LEOS, 148–149 (2009).
- M. G. Moharam, E. B. Grann, D. A. Pommet, and T. K. Gaylord, “Formulation for stable and efficient implementation of the rigorous coupled-wave analysis of binary gratings,” J. Opt. Soc. Am. A 12(5), 1068–1076 (1995). [CrossRef]
- L. Li, “New formulation of the Fourier modal method for crossed surface-relief gratings,” J. Opt. Soc. Am. A 14(10), 2758–2767 (1997). [CrossRef]
- W. Freese, T. Kämpfe, E.-B. Kley, and A. Tünnermann, “Multi-phase-level diffractive elements realized by binary effective medium patterns,” Proc. SPIE 7591, 75910Z, 75910Z-7 (2010). [CrossRef]
- R. W. Gerchberg and W. O. Saxton, “A practical algorithm for the determination of phase from image and diffraction plane pictures,” Optik (Stuttg.) 35, 227–246 (1972).
- F. Wyrowski and O. Bryngdahl, “Digital holography as part of diffractive optics,” Rep. Prog. Phys. 54(12), 1481–1571 (1991). [CrossRef]
- F. Hudelist, A. J. Waddie, and M. R. Taghizadeh, “Analysis of crossed gratings with large periods and small feature sizes by stitching of the electromagnetic field,” J. Opt. Soc. Am. A 26(12), 2648–2653 (2009). [CrossRef]
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