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Developing arrayed waveguide grating spectrographs for multi-object astronomical spectroscopy |
Optics Express, Vol. 20, Issue 3, pp. 2062-2072 (2012)
http://dx.doi.org/10.1364/OE.20.002062
Acrobat PDF (1037 KB)
Abstract
With the aim of utilizing arrayed waveguide gratings for multi-object spectroscopy in the field of astronomy, we outline several ways in which standard telecommunications grade chips should be modified. In particular, by removing the parabolic-horn taper or multimode interference coupler, and injecting with an optical fiber directly, the resolving power was increased threefold from 2400 ± 200 (spectral resolution of 0.63 ± 0.2 nm) to 7000 ± 700 (0.22 ± 0.02 nm) while attaining a throughput of 77 ± 5%. More importantly, the removal of the taper enabled simultaneous off-axis injection from multiple fibers, significantly increasing the number of spectra that can be obtained at once (i.e. the observing efficiency). Here we report that ~12 fibers can be injected simultaneously within the free spectral range of our device, with a 20% reduction in resolving power for fibers placed at 0.8 mm off-centre.
© 2012 OSA
1. Introduction
W. J. Percival, C. M. Baugh, J. Bland-Hawthorn, T. Bridges, R. Cannon, S. Cole, M. Colless, C. Collins, W. Couch, G. Dalton, R. De Propris, S. P. Driver, G. Efstathiou, R. S. Ellis, C. S. Frenk, K. Glazebrook, C. Jackson, O. Lahav, I. Lewis, S. Lumsden, S. Maddox, S. Moody, P. Norberg, J. A. Peacock, B. A. Peterson, W. Sutherland, and K. Taylor, “The 2dF Galaxy Redshift Survey: The power spectrum and the matter content of the universe,” Mon. Not. R. Astron. Soc. 327(4), 1297–1306 (2001). [CrossRef]
J. Bland-Hawthorn and A. Horton, “Instruments without optics: an integrated photonic spectrograph,” Proc. SPIE 6269, 62690N, 62690N-14 (2006). [CrossRef]
F. G. Watson, “A Multi-Fiber Waveguide Spectrograph for Astronomy?” Proc. SPIE 2476, 68–74 (1995). [CrossRef]
F. G. Watson, “Waveguide Spectrographs for Astronomy?” Proc. SPIE 2871, 1373–1378 (1997). [CrossRef]
J. Bland-Hawthorn and A. Horton, “Instruments without optics: an integrated photonic spectrograph,” Proc. SPIE 6269, 62690N, 62690N-14 (2006). [CrossRef]
J. Bland-Hawthorn and A. Horton, “Instruments without optics: an integrated photonic spectrograph,” Proc. SPIE 6269, 62690N, 62690N-14 (2006). [CrossRef]
J. Bland-Hawthorn, J. Lawrence, G. Robertson, S. Campbell, B. Pope, C. Betters, S. Leon-Saval, T. Birks, R. Haynes, N. Cvetojevic, and N. Jovanovic, “PIMMS: photonic integrated multimode microspectrograph,” Proc. SPIE 7735, 77350N, 77350N-9 (2010). [CrossRef]
J. Bland-Hawthorn and A. Horton, “Instruments without optics: an integrated photonic spectrograph,” Proc. SPIE 6269, 62690N, 62690N-14 (2006). [CrossRef]
H. Takahashi, S. Suzuki, K. Kato, and I. Nishi, “Arrayed-waveguide grating for wavelength division multi/demultiplexer with nanometer resolution,” Electron. Lett. 26(2), 87–88 (1990). [CrossRef]
H. Takahashi, S. Suzuki, K. Kato, and I. Nishi, “Arrayed-waveguide grating for wavelength division multi/demultiplexer with nanometer resolution,” Electron. Lett. 26(2), 87–88 (1990). [CrossRef]
N. Cvetojevic, J. S. Lawrence, S. C. Ellis, J. Bland-Hawthorn, R. Haynes, and A. Horton, “Characterization and on-sky demonstration of an integrated photonic spectrograph for astronomy,” Opt. Express 17(21), 18643–18650 (2009). [CrossRef] [PubMed]
2. Parabolic-horn tapers and MMIs’ impact on AWG-spectrograph performance
M. Smit and C. van Dam, “PHASAR-based WDM-devices: Principles, design and applications,” IEEE J. Sel. Top. Quantum Electron. 2(2), 236–250 (1996). [CrossRef]
K. Okamoto and H. Yamada, “Arrayed-waveguide grating multiplexer with flat spectral response,” Opt. Lett. 20(1), 43–45 (1995). [CrossRef] [PubMed]
M. R. Amersfoort, J. B. D. Soole, H. P. LeBlanc, N. C. Andreadakis, A. Rajhei, and C. Caneau, “Passband broadening of integrated arrayed waveguide filters using multimode interference couplers,” Electron. Lett. 32(5), 449–451 (1996). [CrossRef]
K. Okamoto and A. Sugita, “Flat spectral response arrayed-waveguide grating multiplexer with parabolic waveguide horns,” Electron. Lett. 32(18), 1661–1662 (1996). [CrossRef]
J. Bland-Hawthorn and A. Horton, “Instruments without optics: an integrated photonic spectrograph,” Proc. SPIE 6269, 62690N, 62690N-14 (2006). [CrossRef]
3. Direct multiple fiber input
S. Shaklan and F. Roddier, “Coupling starlight into single-mode fiber optics,” Appl. Opt. 27(11), 2334–2338 (1988). [CrossRef] [PubMed]
S. G. Leon-Saval, T. A. Birks, J. Bland-Hawthorn, and M. Englund, “Multimode fiber devices with single-mode performance,” Opt. Lett. 30(19), 2545–2547 (2005). [CrossRef] [PubMed]
S. G. Leon-Saval, A. Argyros, and J. Bland-Hawthorn, “Photonic lanterns: a study of light propagation in multimode to single-mode converters,” Opt. Express 18(8), 8430–8439 (2010). [CrossRef] [PubMed]
S. C. Ellis, J. Bland-Hawthorn, J. S. Lawrence, J. Bryant, R. Haynes, A. Horton, S. Lee, S. Leon-Saval, H. G. Löhmannsröben, J. Mladenoff, J. O'Byrne, W. Rambold, C. Roth, and C. Trinh, “GNOSIS: an OH suppression unit for near-infrared spectrographs,” Proc. SPIE 7735, 773516, 773516-10 (2010). [CrossRef]
N. Cvetojevic, J. S. Lawrence, S. C. Ellis, J. Bland-Hawthorn, R. Haynes, and A. Horton, “Characterization and on-sky demonstration of an integrated photonic spectrograph for astronomy,” Opt. Express 17(21), 18643–18650 (2009). [CrossRef] [PubMed]
3.1 Point-Spread Function aberrations from off-axis launch
S. Lu, W. H. Wong, E. Y. B. Pun, Y. Yan, D. Wang, D. Yi, and G. Jin, “Design of flat-field arrayed waveguide grating with three stigmatic points,” Opt. Quantum Electron. 35(8), 783–790 (2003). [CrossRef]
Y. Tanaka, Y. Itoh, K. Aizawa, T. Kurokawa, and H. Tsuda, “Optical spectrum analyzer based on arrayed waveguide grating for high-speed optical communication systems,” IEEE Photon. Technol. Lett. 17(2), 432–434 (2005). [CrossRef]
3.2 Central wavelength shift due to off-axis launch
4. Conclusion
N. Cvetojevic, J. S. Lawrence, S. C. Ellis, J. Bland-Hawthorn, R. Haynes, and A. Horton, “Characterization and on-sky demonstration of an integrated photonic spectrograph for astronomy,” Opt. Express 17(21), 18643–18650 (2009). [CrossRef] [PubMed]
Acknowledgments
References and links
W. J. Percival, C. M. Baugh, J. Bland-Hawthorn, T. Bridges, R. Cannon, S. Cole, M. Colless, C. Collins, W. Couch, G. Dalton, R. De Propris, S. P. Driver, G. Efstathiou, R. S. Ellis, C. S. Frenk, K. Glazebrook, C. Jackson, O. Lahav, I. Lewis, S. Lumsden, S. Maddox, S. Moody, P. Norberg, J. A. Peacock, B. A. Peterson, W. Sutherland, and K. Taylor, “The 2dF Galaxy Redshift Survey: The power spectrum and the matter content of the universe,” Mon. Not. R. Astron. Soc. 327(4), 1297–1306 (2001). [CrossRef] | |
J. Bland-Hawthorn and A. Horton, “Instruments without optics: an integrated photonic spectrograph,” Proc. SPIE 6269, 62690N, 62690N-14 (2006). [CrossRef] | |
J. Allington-Smith and J. Bland-Hawthorn, “Astrophotonic spectroscopy: defining the potential advantage,” Mon. Not. R. Astron. Soc. 404, 232–238 (2010). | |
F. G. Watson, “A Multi-Fiber Waveguide Spectrograph for Astronomy?” Proc. SPIE 2476, 68–74 (1995). [CrossRef] | |
F. G. Watson, “Waveguide Spectrographs for Astronomy?” Proc. SPIE 2871, 1373–1378 (1997). [CrossRef] | |
J. Bland-Hawthorn, J. Lawrence, G. Robertson, S. Campbell, B. Pope, C. Betters, S. Leon-Saval, T. Birks, R. Haynes, N. Cvetojevic, and N. Jovanovic, “PIMMS: photonic integrated multimode microspectrograph,” Proc. SPIE 7735, 77350N, 77350N-9 (2010). [CrossRef] | |
H. Takahashi, S. Suzuki, K. Kato, and I. Nishi, “Arrayed-waveguide grating for wavelength division multi/demultiplexer with nanometer resolution,” Electron. Lett. 26(2), 87–88 (1990). [CrossRef] | |
N. Cvetojevic, J. S. Lawrence, S. C. Ellis, J. Bland-Hawthorn, R. Haynes, and A. Horton, “Characterization and on-sky demonstration of an integrated photonic spectrograph for astronomy,” Opt. Express 17(21), 18643–18650 (2009). [CrossRef] [PubMed] | |
J. Lawrence, J. Bland-Hawthorn, N. Cvetojevic, R. Haynes, and N. Jovanovic, “Miniture astronomical spectrographs using arrayed waveguide gratings: Capabilities and limitations,” Proc. SPIE 7739, 773941 (2010). | |
P. Munoz, D. Pastor, and J. Capmany, “Modeling and design of arrayed waveguide gratings,” J. Lightwave Technol. 20(4), 661–674 (2002). [CrossRef] | |
M. Smit and C. van Dam, “PHASAR-based WDM-devices: Principles, design and applications,” IEEE J. Sel. Top. Quantum Electron. 2(2), 236–250 (1996). [CrossRef] | |
K. Okamoto and H. Yamada, “Arrayed-waveguide grating multiplexer with flat spectral response,” Opt. Lett. 20(1), 43–45 (1995). [CrossRef] [PubMed] | |
K. Okamoto and A. Sugita, “Flat spectral response arrayed-waveguide grating multiplexer with parabolic waveguide horns,” Electron. Lett. 32(18), 1661–1662 (1996). [CrossRef] | |
M. R. Amersfoort, J. B. D. Soole, H. P. LeBlanc, N. C. Andreadakis, A. Rajhei, and C. Caneau, “Passband broadening of integrated arrayed waveguide filters using multimode interference couplers,” Electron. Lett. 32(5), 449–451 (1996). [CrossRef] | |
http://www.jdsu.com/en-us/Optical-Communications/Products/a-z-product-list/Pages/arrayed-waveguide-grating-100-ghz-narrowband-gaussian.aspx | |
S. Shaklan and F. Roddier, “Coupling starlight into single-mode fiber optics,” Appl. Opt. 27(11), 2334–2338 (1988). [CrossRef] [PubMed] | |
V. Coudé du Foresto, M. Faucherre, N. Hubin, and P. Gitton, “Using single-mode fibers to monitor fast Strehl ratio fluctuations. Application to a 3.6 m telescope corrected by adaptive optics,” Astron. Astrophys. 145(2), 305–310 (2000). | |
S. G. Leon-Saval, T. A. Birks, J. Bland-Hawthorn, and M. Englund, “Multimode fiber devices with single-mode performance,” Opt. Lett. 30(19), 2545–2547 (2005). [CrossRef] [PubMed] | |
D. Noordegraaf, P. M. W. Skovgaard, M. D. Nielsen, and J. Bland-Hawthorn, “Efficient multi-mode to single-mode coupling in a photonic lantern,” Opt. Express 17(3), 1988–1994 (2009). [CrossRef] [PubMed] | |
D. Noordegraaf, P. M. W. Skovgaard, M. D. Maack, J. Bland-Hawthorn, R. Haynes, and J. Laegsgaard, “Multi-mode to single-mode conversion in a 61 port Photonic Lantern,” Opt. Express 18(5), 4673–4678 (2010). [CrossRef] [PubMed] | |
S. G. Leon-Saval, A. Argyros, and J. Bland-Hawthorn, “Photonic lanterns: a study of light propagation in multimode to single-mode converters,” Opt. Express 18(8), 8430–8439 (2010). [CrossRef] [PubMed] | |
S. C. Ellis, J. Bland-Hawthorn, J. S. Lawrence, J. Bryant, R. Haynes, A. Horton, S. Lee, S. Leon-Saval, H. G. Löhmannsröben, J. Mladenoff, J. O'Byrne, W. Rambold, C. Roth, and C. Trinh, “GNOSIS: an OH suppression unit for near-infrared spectrographs,” Proc. SPIE 7735, 773516, 773516-10 (2010). [CrossRef] | |
S. Lu, W. H. Wong, E. Y. B. Pun, Y. Yan, D. Wang, D. Yi, and G. Jin, “Design of flat-field arrayed waveguide grating with three stigmatic points,” Opt. Quantum Electron. 35(8), 783–790 (2003). [CrossRef] | |
Y. Tanaka, Y. Itoh, K. Aizawa, T. Kurokawa, and H. Tsuda, “Optical spectrum analyzer based on arrayed waveguide grating for high-speed optical communication systems,” IEEE Photon. Technol. Lett. 17(2), 432–434 (2005). [CrossRef] |
OCIS Codes
(110.5100) Imaging systems : Phased-array imaging systems
(130.3120) Integrated optics : Integrated optics devices
(230.1150) Optical devices : All-optical devices
(300.6190) Spectroscopy : Spectrometers
(350.1260) Other areas of optics : Astronomical optics
ToC Category:
Integrated Optics
History
Original Manuscript: September 22, 2011
Revised Manuscript: November 11, 2011
Manuscript Accepted: December 23, 2011
Published: January 17, 2012
Citation
Nick Cvetojevic, Nemanja Jovanovic, Jon Lawrence, Michael Withford, and Joss Bland-Hawthorn, "Developing arrayed waveguide grating spectrographs for multi-object astronomical spectroscopy," Opt. Express 20, 2062-2072 (2012)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-20-3-2062
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References
- W. J. Percival, C. M. Baugh, J. Bland-Hawthorn, T. Bridges, R. Cannon, S. Cole, M. Colless, C. Collins, W. Couch, G. Dalton, R. De Propris, S. P. Driver, G. Efstathiou, R. S. Ellis, C. S. Frenk, K. Glazebrook, C. Jackson, O. Lahav, I. Lewis, S. Lumsden, S. Maddox, S. Moody, P. Norberg, J. A. Peacock, B. A. Peterson, W. Sutherland, and K. Taylor, “The 2dF Galaxy Redshift Survey: The power spectrum and the matter content of the universe,” Mon. Not. R. Astron. Soc.327(4), 1297–1306 (2001). [CrossRef]
- J. Bland-Hawthorn and A. Horton, “Instruments without optics: an integrated photonic spectrograph,” Proc. SPIE6269, 62690N, 62690N-14 (2006). [CrossRef]
- J. Allington-Smith and J. Bland-Hawthorn, “Astrophotonic spectroscopy: defining the potential advantage,” Mon. Not. R. Astron. Soc.404, 232–238 (2010).
- F. G. Watson, “A Multi-Fiber Waveguide Spectrograph for Astronomy?” Proc. SPIE2476, 68–74 (1995). [CrossRef]
- F. G. Watson, “Waveguide Spectrographs for Astronomy?” Proc. SPIE2871, 1373–1378 (1997). [CrossRef]
- J. Bland-Hawthorn, J. Lawrence, G. Robertson, S. Campbell, B. Pope, C. Betters, S. Leon-Saval, T. Birks, R. Haynes, N. Cvetojevic, and N. Jovanovic, “PIMMS: photonic integrated multimode microspectrograph,” Proc. SPIE7735, 77350N, 77350N-9 (2010). [CrossRef]
- H. Takahashi, S. Suzuki, K. Kato, and I. Nishi, “Arrayed-waveguide grating for wavelength division multi/demultiplexer with nanometer resolution,” Electron. Lett.26(2), 87–88 (1990). [CrossRef]
- N. Cvetojevic, J. S. Lawrence, S. C. Ellis, J. Bland-Hawthorn, R. Haynes, and A. Horton, “Characterization and on-sky demonstration of an integrated photonic spectrograph for astronomy,” Opt. Express17(21), 18643–18650 (2009). [CrossRef] [PubMed]
- J. Lawrence, J. Bland-Hawthorn, N. Cvetojevic, R. Haynes, and N. Jovanovic, “Miniture astronomical spectrographs using arrayed waveguide gratings: Capabilities and limitations,” Proc. SPIE7739, 773941 (2010).
- P. Munoz, D. Pastor, and J. Capmany, “Modeling and design of arrayed waveguide gratings,” J. Lightwave Technol.20(4), 661–674 (2002). [CrossRef]
- M. Smit and C. van Dam, “PHASAR-based WDM-devices: Principles, design and applications,” IEEE J. Sel. Top. Quantum Electron.2(2), 236–250 (1996). [CrossRef]
- K. Okamoto and H. Yamada, “Arrayed-waveguide grating multiplexer with flat spectral response,” Opt. Lett.20(1), 43–45 (1995). [CrossRef] [PubMed]
- K. Okamoto and A. Sugita, “Flat spectral response arrayed-waveguide grating multiplexer with parabolic waveguide horns,” Electron. Lett.32(18), 1661–1662 (1996). [CrossRef]
- M. R. Amersfoort, J. B. D. Soole, H. P. LeBlanc, N. C. Andreadakis, A. Rajhei, and C. Caneau, “Passband broadening of integrated arrayed waveguide filters using multimode interference couplers,” Electron. Lett.32(5), 449–451 (1996). [CrossRef]
- http://www.jdsu.com/en-us/Optical-Communications/Products/a-z-product-list/Pages/arrayed-waveguide-grating-100-ghz-narrowband-gaussian.aspx
- S. Shaklan and F. Roddier, “Coupling starlight into single-mode fiber optics,” Appl. Opt.27(11), 2334–2338 (1988). [CrossRef] [PubMed]
- V. Coudé du Foresto, M. Faucherre, N. Hubin, and P. Gitton, “Using single-mode fibers to monitor fast Strehl ratio fluctuations. Application to a 3.6 m telescope corrected by adaptive optics,” Astron. Astrophys.145(2), 305–310 (2000).
- S. G. Leon-Saval, T. A. Birks, J. Bland-Hawthorn, and M. Englund, “Multimode fiber devices with single-mode performance,” Opt. Lett.30(19), 2545–2547 (2005). [CrossRef] [PubMed]
- D. Noordegraaf, P. M. W. Skovgaard, M. D. Nielsen, and J. Bland-Hawthorn, “Efficient multi-mode to single-mode coupling in a photonic lantern,” Opt. Express17(3), 1988–1994 (2009). [CrossRef] [PubMed]
- D. Noordegraaf, P. M. W. Skovgaard, M. D. Maack, J. Bland-Hawthorn, R. Haynes, and J. Laegsgaard, “Multi-mode to single-mode conversion in a 61 port Photonic Lantern,” Opt. Express18(5), 4673–4678 (2010). [CrossRef] [PubMed]
- S. G. Leon-Saval, A. Argyros, and J. Bland-Hawthorn, “Photonic lanterns: a study of light propagation in multimode to single-mode converters,” Opt. Express18(8), 8430–8439 (2010). [CrossRef] [PubMed]
- S. C. Ellis, J. Bland-Hawthorn, J. S. Lawrence, J. Bryant, R. Haynes, A. Horton, S. Lee, S. Leon-Saval, H. G. Löhmannsröben, J. Mladenoff, J. O'Byrne, W. Rambold, C. Roth, and C. Trinh, “GNOSIS: an OH suppression unit for near-infrared spectrographs,” Proc. SPIE7735, 773516, 773516-10 (2010). [CrossRef]
- S. Lu, W. H. Wong, E. Y. B. Pun, Y. Yan, D. Wang, D. Yi, and G. Jin, “Design of flat-field arrayed waveguide grating with three stigmatic points,” Opt. Quantum Electron.35(8), 783–790 (2003). [CrossRef]
- Y. Tanaka, Y. Itoh, K. Aizawa, T. Kurokawa, and H. Tsuda, “Optical spectrum analyzer based on arrayed waveguide grating for high-speed optical communication systems,” IEEE Photon. Technol. Lett.17(2), 432–434 (2005). [CrossRef]
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