A simple miniature optical spectrometer with a planar waveguide grating coupler in combination with a plano-convex lens
Optics Express, Vol. 14, Issue 9, pp. 4064-4072 (2006)
http://dx.doi.org/10.1364/OE.14.004064
Acrobat PDF (219 KB)
Abstract
A miniature optical spectrometer with a thin-film planar waveguide grating coupler in combination with a miniature plano-convex focusing lens has been investigated. With optical part of the spectrometer as small as 0.2 cubic cm, the spectral resolution varies from 0.3 nm to 4.6 nm within the wavelength range 488.0 nm – 632.8 nm.
© 2006 Optical Society of America
1. Introduction
M. Varasi, M. Signorazzi, A. Vannucci, and J. Dunphy, “A high-resolution integrated optical spectrometer with applications to fibre sensor signal processing,” Meas. Sci. Technol. 7, 173–178 (1996). [CrossRef]
G. Lammel, S. Schweizer, and Ph. Renaud, “Microspectrometer based on a tunable optical filter of porous silicon,” Sens. Act. A 92, 52–59 (2001). [CrossRef]
D. Brennan, J. Alderman, I. Sattler, J. Walshe, J. Huang, B.O Connor, and C. O. Mathuna, “Development of a microspectrometer system for process control application,” Infrared Phys. Technol. 43, 69–76 (2002). [CrossRef]
H.L. Kung, S.R. Bhalotra, J.D. Mansell, D.A.B. Miller, and J.S. Harris Jr., “Standing-wave transform spectrometer based on integrated MEMS mirror and thin-film photodetector,” IEEE J. Sel. Top. Quantum. Electron. 8, 98–105 (2002). [CrossRef]
G. Lammel, S. Schweizer, and Ph. Renaud, “Microspectrometer based on a tunable optical filter of porous silicon,” Sens. Act. A 92, 52–59 (2001). [CrossRef]
J.H. Correia, G. de Graf, M. Bartek, and R.F. Wolffenbuttel, “A single-chip CMOS optical microspectrometer with light-to-frequency converter and bus interface,” IEEE J. Solid-State Circuits 37, 1344 – 1347 (2002). [CrossRef]
O. Manzardo, H.P. Herzig, C.R. Marxer, and N.F. de Rooij, “Miniaturized time-scanning Fourier transform spectrometer based on silicon technology,” Opt. Lett. 24, 1705–1707 (1999). [CrossRef]
Dietmar Sander and Jorg Muller, “Selffocusing phase transmission grating for an integrated optical microspectrometer,” Sens. Act. A 88, 1–9 (2001). [CrossRef]
Don.S. Goldman, P.L. White, and N.C. Anheier, “Miniaturized spectrometer employing planar waveguides and grating couplers for chemical analysis,” Appl. Opt. 29, 4583–4589 (1990). [CrossRef] [PubMed]
Dietmar Sander and Jorg Muller, “Selffocusing phase transmission grating for an integrated optical microspectrometer,” Sens. Act. A 88, 1–9 (2001). [CrossRef]
R.F. Wolffenbuttel, “State-of-the-art in integrated optical microspectrometers,” IEEE. Trans. Instrum. Meas. 53, 197–202 (2004). [CrossRef]
S.H. Kong, D.D.L. Wijngaards, and R.F. Wolffenbuttel, “Infrared micro-spectrometer based on a diffraction grating,” Sens. Act. A 92, 88–95 (2001). [CrossRef]
Pavel Cheben, Ian Powell, Siegfried Janz, and Dan-Xia Xu, “Wavelength-dispersive device based on Fourier-transform Michelson-type arrayed waveguide grating,” Opt. Lett. 30, 1824–1826 (2005). [CrossRef] [PubMed]
G. Lammel, S. Schweizer, and Ph. Renaud, “Microspectrometer based on a tunable optical filter of porous silicon,” Sens. Act. A 92, 52–59 (2001). [CrossRef]
J.H. Correia, G. de Graf, M. Bartek, and R.F. Wolffenbuttel, “A single-chip CMOS optical microspectrometer with light-to-frequency converter and bus interface,” IEEE J. Solid-State Circuits 37, 1344 – 1347 (2002). [CrossRef]
M. Varasi, M. Signorazzi, A. Vannucci, and J. Dunphy, “A high-resolution integrated optical spectrometer with applications to fibre sensor signal processing,” Meas. Sci. Technol. 7, 173–178 (1996). [CrossRef]
H.L. Kung, S.R. Bhalotra, J.D. Mansell, D.A.B. Miller, and J.S. Harris Jr., “Standing-wave transform spectrometer based on integrated MEMS mirror and thin-film photodetector,” IEEE J. Sel. Top. Quantum. Electron. 8, 98–105 (2002). [CrossRef]
H. Stiebig, D. Knipp, S.R. Bhalotra, H.L. Kung, and David A.B. Miller, “Interferometric sensors for spectral imaging,” Sens. Act. A 120, 110–114 (2005). [CrossRef]
O. Manzardo, H.P. Herzig, C.R. Marxer, and N.F. de Rooij, “Miniaturized time-scanning Fourier transform spectrometer based on silicon technology,” Opt. Lett. 24, 1705–1707 (1999). [CrossRef]
S. Ura, F. Okayama, K. Shiroshita, K. Nishio, T. Sasaki, H. Nishihara, T. Yotsuya, M. Okano, and K. Satoh, “Planar reflection grating lens for compact spectroscopic imaging system,” Appl. Opt. 42, 175–180 (2003). [CrossRef] [PubMed]
Dietmar Sander and Jorg Muller, “Selffocusing phase transmission grating for an integrated optical microspectrometer,” Sens. Act. A 88, 1–9 (2001). [CrossRef]
Pavel Cheben, Ian Powell, Siegfried Janz, and Dan-Xia Xu, “Wavelength-dispersive device based on Fourier-transform Michelson-type arrayed waveguide grating,” Opt. Lett. 30, 1824–1826 (2005). [CrossRef] [PubMed]
R.F. Wolffenbuttel, “State-of-the-art in integrated optical microspectrometers,” IEEE. Trans. Instrum. Meas. 53, 197–202 (2004). [CrossRef]
2. Design of the miniature spectrometer
3. Fabrication
D. Maystre, M. Neviere, and R. Petit, “Experimental verifications and applications of the theory,” in Electromagnetic Theory of Gratings , R. Petit, ed. (Springer, New York, 1980), Chap. 6. [CrossRef]
4. Experiments
| No | f | Dimensions of the optical part of the spectrometer (includes CCD array but excludes CCD electronics) | Resolution, Δλ | Wavelengths for finding resolution |
|---|---|---|---|---|
| 1 | 14 cm | 16 cm × 4 cm × 4 cm | 0.2 nm | 514.5 nm , 632.8 nm |
| 2 | 2 cm | 2.5 cm × 0.8 cm × 0.8 cm (1.6 cubic cm) | 0.2 nm | 632.8 nm, 640 nm |
| 3 | 1 cm | 1.2 cm × 0.4 cm × 0.4 cm ( 0.19 cubic cm) | 0.3 nm | 632.8 nm, 640 nm |
| 4[14] | 1 cm | same as above | 0.51 nm | 514.5 nm , 632.8 nm |
| 5 | 1 cm | same as above | 0.66 nm | 488 nm, 632.8 nm |
S. Ura, F. Okayama, K. Shiroshita, K. Nishio, T. Sasaki, H. Nishihara, T. Yotsuya, M. Okano, and K. Satoh, “Planar reflection grating lens for compact spectroscopic imaging system,” Appl. Opt. 42, 175–180 (2003). [CrossRef] [PubMed]
D. W. C. So and S. R. Seshadri, “Metal-island-film polarizer,” J. Opt. Soc. Am. B 14, 2831–2841 (1997). [CrossRef]
M. A. Sletten and S. R. Seshadri, “Thick metal surface-polariton polarizer for a planar optical waveguide,” J. Opt. Soc. Am. A 7, 1174–1184 (1990). [CrossRef]
6. Conclusion
Acknowledgments
References and links
M. Varasi, M. Signorazzi, A. Vannucci, and J. Dunphy, “A high-resolution integrated optical spectrometer with applications to fibre sensor signal processing,” Meas. Sci. Technol. 7, 173–178 (1996). [CrossRef] | |
H.L. Kung, S.R. Bhalotra, J.D. Mansell, D.A.B. Miller, and J.S. Harris Jr., “Standing-wave transform spectrometer based on integrated MEMS mirror and thin-film photodetector,” IEEE J. Sel. Top. Quantum. Electron. 8, 98–105 (2002). [CrossRef] | |
H. Stiebig, D. Knipp, S.R. Bhalotra, H.L. Kung, and David A.B. Miller, “Interferometric sensors for spectral imaging,” Sens. Act. A 120, 110–114 (2005). [CrossRef] | |
Dietmar Sander and Jorg Muller, “Selffocusing phase transmission grating for an integrated optical microspectrometer,” Sens. Act. A 88, 1–9 (2001). [CrossRef] | |
G. Lammel, S. Schweizer, and Ph. Renaud, “Microspectrometer based on a tunable optical filter of porous silicon,” Sens. Act. A 92, 52–59 (2001). [CrossRef] | |
J.H. Correia, G. de Graf, M. Bartek, and R.F. Wolffenbuttel, “A single-chip CMOS optical microspectrometer with light-to-frequency converter and bus interface,” IEEE J. Solid-State Circuits 37, 1344 – 1347 (2002). [CrossRef] | |
R.F. Wolffenbuttel, “State-of-the-art in integrated optical microspectrometers,” IEEE. Trans. Instrum. Meas. 53, 197–202 (2004). [CrossRef] | |
Don.S. Goldman, P.L. White, and N.C. Anheier, “Miniaturized spectrometer employing planar waveguides and grating couplers for chemical analysis,” Appl. Opt. 29, 4583–4589 (1990). [CrossRef] [PubMed] | |
S. Ura, F. Okayama, K. Shiroshita, K. Nishio, T. Sasaki, H. Nishihara, T. Yotsuya, M. Okano, and K. Satoh, “Planar reflection grating lens for compact spectroscopic imaging system,” Appl. Opt. 42, 175–180 (2003). [CrossRef] [PubMed] | |
D. Brennan, J. Alderman, I. Sattler, J. Walshe, J. Huang, B.O Connor, and C. O. Mathuna, “Development of a microspectrometer system for process control application,” Infrared Phys. Technol. 43, 69–76 (2002). [CrossRef] | |
O. Manzardo, H.P. Herzig, C.R. Marxer, and N.F. de Rooij, “Miniaturized time-scanning Fourier transform spectrometer based on silicon technology,” Opt. Lett. 24, 1705–1707 (1999). [CrossRef] | |
S.H. Kong, D.D.L. Wijngaards, and R.F. Wolffenbuttel, “Infrared micro-spectrometer based on a diffraction grating,” Sens. Act. A 92, 88–95 (2001). [CrossRef] | |
Pavel Cheben, Ian Powell, Siegfried Janz, and Dan-Xia Xu, “Wavelength-dispersive device based on Fourier-transform Michelson-type arrayed waveguide grating,” Opt. Lett. 30, 1824–1826 (2005). [CrossRef] [PubMed] | |
Ivan Avrutsky, Kalyani Chaganti, Ildar Salakhutdinov, and Gregory Auner, “Concept of miniature optical spectrometer using integrated optical and microoptical components,” (submitted to Appl.Opt.). | |
D. Maystre, M. Neviere, and R. Petit, “Experimental verifications and applications of the theory,” in Electromagnetic Theory of Gratings , R. Petit, ed. (Springer, New York, 1980), Chap. 6. [CrossRef] | |
D. W. C. So and S. R. Seshadri, “Metal-island-film polarizer,” J. Opt. Soc. Am. B 14, 2831–2841 (1997). [CrossRef] | |
M. A. Sletten and S. R. Seshadri, “Thick metal surface-polariton polarizer for a planar optical waveguide,” J. Opt. Soc. Am. A 7, 1174–1184 (1990). [CrossRef] |
OCIS Codes
(230.0230) Optical devices : Optical devices
(230.3120) Optical devices : Integrated optics devices
(350.3950) Other areas of optics : Micro-optics
ToC Category:
Optical Devices
History
Original Manuscript: March 13, 2006
Revised Manuscript: April 20, 2006
Manuscript Accepted: April 25, 2006
Published: May 1, 2006
Citation
Kalyani Chaganti, Ildar Salakhutdinov, Ivan Avrutsky, and Gregory W. Auner, "A simple miniature optical spectrometer with a planar waveguide grating coupler in combination with a plano-convex lens," Opt. Express 14, 4064-4072 (2006)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-14-9-4064
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References
- M. Varasi, M. Signorazzi, A. Vannucci and J. Dunphy, "A high-resolution integrated optical spectrometer with applications to fibre sensor signal processing," Meas. Sci. Technol. 7, 173-178 (1996). [CrossRef]
- H. L. Kung, S. R. Bhalotra, J. D. Mansell, D. A. B. Miller, and J. S. HarrisJr., "Standing-wave transform spectrometer based on integrated MEMS mirror and thin-film photodetector," IEEE J. Sel. Top. Quantum. Electron. 8,98-105 (2002). [CrossRef]
- H. Stiebig, D. Knipp, S. R. Bhalotra, H. L. Kung, and D. A. B. Miller, "Interferometric sensors for spectral imaging," Sens. Actuators, A 120, 110-114 (2005). [CrossRef]
- D. Sander and J. Muller, "Self-focusing phase transmission grating for an integrated optical microspectrometer," Sens. Actuators, A 88, 1-9 (2001). [CrossRef]
- G. Lammel, S. Schweizer, and Ph. Renaud, "Microspectrometer based on a tunable optical filter of porous silicon," Sens. Actuators, A 92, 52-59 (2001). [CrossRef]
- J. H. Correia, G. de Graf, M. Bartek and R. F. Wolffenbuttel, "A single-chip CMOS optical microspectrometer with light-to-frequency converter and bus interface," IEEE J. Solid-State Circuits 37,1344-1347 (2002). [CrossRef]
- R. F. Wolffenbuttel, "State-of-the-art in integrated optical microspectrometers," IEEE. Trans. Instrum. Meas. 53, 197-202 (2004). [CrossRef]
- D. S. Goldman, P. L. White, and N. C. Anheier, "Miniaturized spectrometer employing planar waveguides and grating couplers for chemical analysis," Appl. Opt. 29, 4583-4589 (1990). [CrossRef] [PubMed]
- S. Ura, F. Okayama, K. Shiroshita, K. Nishio, T. Sasaki, H. Nishihara, T. Yotsuya, M. Okano, and K. Satoh, "Planar reflection grating lens for compact spectroscopic imaging system," Appl. Opt. 42, 175-180 (2003). [CrossRef] [PubMed]
- D. Brennan, J. Alderman, I. Sattler, J. Walshe, J. Huang, B. O’Connor, and C. O. Mathuna, "Development of a microspectrometer system for process control application," Infrared Phys. Technol. 43, 69-76 (2002). [CrossRef]
- O. Manzardo, H. P. Herzig, C. R. Marxer, and N. F. de Rooij, "Miniaturized time-scanning Fourier transform spectrometer based on silicon technology," Opt. Lett. 24, 1705-1707 (1999). [CrossRef]
- S. H. Kong, D. D. L. Wijngaards, and R. F. Wolffenbuttel, "Infrared micro-spectrometer based on a diffraction grating," Sens. Act. A 92,88-95 (2001). [CrossRef]
- P. Cheben, I. Powell, S. Janz, and D.-X. Xu, "Wavelength-dispersive device based on Fourier-transform Michelson-type arrayed waveguide grating," Opt. Lett. 30, 1824-1826 (2005). [CrossRef] [PubMed]
- I. Avrutsky, K. Chaganti, I. Salakhutdinov, and G. Auner, ",Concept of miniature optical spectrometer using integrated optical and micro-optical components," (submitted to Appl. Opt.).
- D. Maystre, M. Neviere, and R. Petit, "Experimental verifications and applications of the theory," in Electromagnetic Theory of Gratings, R. Petit, ed. (Springer, New York, 1980), Chap. 6. [CrossRef]
- D. W. C. So and S. R. Seshadri, "Metal-island-film polarizer," J. Opt. Soc. Am. B 14, 2831-2841 (1997). [CrossRef]
- M. A. Sletten and S. R. Seshadri, "Thick metal surface-polariton polarizer for a planar optical waveguide," J. Opt. Soc. Am. A 7, 1174-1184 (1990). [CrossRef]
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