Efficient spectroscopy of single embedded emitters using optical fiber taper waveguides
Optics Express, Vol. 17, Issue 13, pp. 10542-10563 (2009)
http://dx.doi.org/10.1364/OE.17.010542
Acrobat PDF (1648 KB)
Abstract
A technique based on using optical fiber taper waveguides for probing single emitters embedded in thin dielectric membranes is assessed through numerical simulations. For an appropriate membrane geometry, photoluminescence collection efficiencies in excess of 10 % are predicted, exceeding the efficiency of standard free-space collection by an order of magnitude. Our results indicate that these fiber taper waveguides offer excellent prospects for performing efficient spectroscopy of single emitters embedded in thin films, such as a single self-assembled quantum dot in a semiconductor membrane.
© 2009 Optical Society of America
1. Introduction
B. Gerardot, S. Seidl, P. Dalgarno, R. Warburton, M. Kroner, K. Karrai, A. Badolato, and P. Petroff, “Contrast in transmission spectroscopy of a single quantum dot,” Appl. Phys. Lett. 90, 221 106 (2007). [CrossRef]
A. N. Vamivakas, M. Atature, J. Dreiser, S. T. Yilmaz, A. Badolato, A. K. Swan, B. B. Goldberg, A. Imamoglu, and M. S. Unlu, “Strong Extinction of a Far-Field Laser Beam by a Single Quantum Dot,” Nano Lett. 7, 2892–2896 (2007). [CrossRef] [PubMed]
G. Wrigge, I. Gerhardt, J. Hwang, G. Zumofen, and V. Sandoghdar, “Efficient coupling of photons to a single molecule and the observation of its resonance fluorescence,” Nat. Phys. 4, 60–66 (2008). [CrossRef]
I. Gerhardt, G. Wrigge, P. Bushev, G. Zumofen, M. Agio, R. Pfab, and V. Sandoghdar, “Strong Extinction of a Laser Beam by a Single Molecule,” Phys. Rev. Lett. 98, 033 601 (2007). [CrossRef]
T. Aoki, B. Dayan, E. Wilcut, W. P. Bowen, A. S. Parkins, H. J. Kimble, T. J. Kippenberg, and K. J. Vahala, “Observation of Strong Coupling between One Atom and a Monolithic Microresonator,” Nature 443, 671–674 (2006). [CrossRef] [PubMed]
K. Srinivasan and O. Painter, “Linear and nonlinear optical spectroscopy of a strongly coupled microdisk-quantum dot system,” Nature 450, 862–865 (2007). [CrossRef] [PubMed]
K. Srinivasan, C. P. Michael, R. Perahia, and O. Painter, “Investigations of a coherently driven semiconductor optical cavity QED system,” Phys. Rev. A 78, 033 839 (2008). [CrossRef]
V. V. Klimov and M. Ducloy, “Spontaneous emission rate of an excited atom placed near a nanofiber,” Phys. Rev. A 69, 013 812 (2004). [CrossRef]
K. Nayak, P. Melentiev, M. Morinaga, F. Le Kien, V. Balykin, and K. Hakuta, “Optical nanofiber as an efficient tool for manipulating and probing atomic fluorescences,” Opt. Express 15, 5431–5438 (2007). [CrossRef] [PubMed]
K. Srinivasan, O. Painter, A. Stintz, and S. Krishna, “Single quantum dot spectroscopy using a fiber taper waveguide near-field optic,” Appl. Phys. Lett. 91, 091 102 (2007). [CrossRef]
K. Srinivasan, O. Painter, A. Stintz, and S. Krishna, “Single quantum dot spectroscopy using a fiber taper waveguide near-field optic,” Appl. Phys. Lett. 91, 091 102 (2007). [CrossRef]
B. Gerardot, S. Seidl, P. Dalgarno, R. Warburton, M. Kroner, K. Karrai, A. Badolato, and P. Petroff, “Contrast in transmission spectroscopy of a single quantum dot,” Appl. Phys. Lett. 90, 221 106 (2007). [CrossRef]
A. N. Vamivakas, M. Atature, J. Dreiser, S. T. Yilmaz, A. Badolato, A. K. Swan, B. B. Goldberg, A. Imamoglu, and M. S. Unlu, “Strong Extinction of a Far-Field Laser Beam by a Single Quantum Dot,” Nano Lett. 7, 2892–2896 (2007). [CrossRef] [PubMed]
G. Wrigge, I. Gerhardt, J. Hwang, G. Zumofen, and V. Sandoghdar, “Efficient coupling of photons to a single molecule and the observation of its resonance fluorescence,” Nat. Phys. 4, 60–66 (2008). [CrossRef]
I. Gerhardt, G. Wrigge, P. Bushev, G. Zumofen, M. Agio, R. Pfab, and V. Sandoghdar, “Strong Extinction of a Laser Beam by a Single Molecule,” Phys. Rev. Lett. 98, 033 601 (2007). [CrossRef]
K. Srinivasan, C. P. Michael, R. Perahia, and O. Painter, “Investigations of a coherently driven semiconductor optical cavity QED system,” Phys. Rev. A 78, 033 839 (2008). [CrossRef]
A. Muller, E. B. Flagg, P. Bianucci, X. Wang, D. G. Deppe, W. Ma, J. Zhang, G. J. Salamo, M. Xiao, and C. K. Shih, “Resonance Fluorescence from a Coherently Driven Semiconductor Quantum Dot in a Cavity,” Phys. Rev. Lett. 99, 187 402 (2007). [CrossRef]
2. Fiber-based embedded single emitter photoluminescence collection
K. Srinivasan, O. Painter, A. Stintz, and S. Krishna, “Single quantum dot spectroscopy using a fiber taper waveguide near-field optic,” Appl. Phys. Lett. 91, 091 102 (2007). [CrossRef]
C. F. Wang, A. Badolato, I. Wilson-Rae, P. M. Petroff, E. Hu, J. Urayama, and A. Imamoglu, “Optical properties of single InAs quantum dots in close proximity to surfaces,” Appl. Phys. Lett. 85, 3423–3425 (2004). [CrossRef]
2.1. Simulation Method
W.-P. Huang, “Coupled-mode theory for optical waveguides: and overview,” J. Opt. Soc. Am. A 11, 963–983 (1994). [CrossRef]
2.2. Simulation Results
2.2.1. Total radiated power
H. Benisty, R. Stanley, and M. Mayer, “Method of source terms for dipole emission modification in modes of arbitrary planar structures,” J. Opt. Soc. Am. A 15, 1192–1201 (1998). [CrossRef]
H. Benisty, R. Stanley, and M. Mayer, “Method of source terms for dipole emission modification in modes of arbitrary planar structures,” J. Opt. Soc. Am. A 15, 1192–1201 (1998). [CrossRef]
H. Rigneault and S. Monneret, “Modal analysis of spontaneous emission in a planar microcavity,” Phys. Rev. A 54, 2356–2368 (1996). [CrossRef] [PubMed]
H. P. Urbach and G. L. J. A. Rikken, “Spontaneous emission from a dielectric slab,” Phys. Rev. A 57, 3913–3930 (1998). [CrossRef]
H. Benisty, R. Stanley, and M. Mayer, “Method of source terms for dipole emission modification in modes of arbitrary planar structures,” J. Opt. Soc. Am. A 15, 1192–1201 (1998). [CrossRef]
H. Benisty, R. Stanley, and M. Mayer, “Method of source terms for dipole emission modification in modes of arbitrary planar structures,” J. Opt. Soc. Am. A 15, 1192–1201 (1998). [CrossRef]
2.2.2. Photoluminescence Collection
W.-P. Huang, “Coupled-mode theory for optical waveguides: and overview,” J. Opt. Soc. Am. A 11, 963–983 (1994). [CrossRef]
K. Srinivasan, O. Painter, A. Stintz, and S. Krishna, “Single quantum dot spectroscopy using a fiber taper waveguide near-field optic,” Appl. Phys. Lett. 91, 091 102 (2007). [CrossRef]
K. Srinivasan, O. Painter, A. Stintz, and S. Krishna, “Single quantum dot spectroscopy using a fiber taper waveguide near-field optic,” Appl. Phys. Lett. 91, 091 102 (2007). [CrossRef]
H. Benisty, R. Stanley, and M. Mayer, “Method of source terms for dipole emission modification in modes of arbitrary planar structures,” J. Opt. Soc. Am. A 15, 1192–1201 (1998). [CrossRef]
W.-P. Huang, “Coupled-mode theory for optical waveguides: and overview,” J. Opt. Soc. Am. A 11, 963–983 (1994). [CrossRef]
C. P. Michael, M. Borselli, T. J. Johnson, and O. Painter, “An optical fiber taper probe for wafer-scale microphotonic device characterization,” Opt. Express 15, 4745–4752 (2007). [CrossRef] [PubMed]
P. Jayavel, H. Tanaka, T. Kita, O. Wada, H. Ebe, M. Sugawara, J. Tatebayashi, Y. Arakawa, Y. Nakat, and T. Akiyama, “Control of optical polarization anisotropy in edge emitting luminescence of InAs/GaAs self-assemble quantum dots,” Appl. Phys. Lett. 84 (2004). [CrossRef]
3. Analysis
3.1. Supermodes of the composite waveguide
3.2. Modified spontaneous emission rate in the composite waveguide
T. Søndergaard and B. Tromborg, “General theory for spontaneous emission in active dielectric microstructures: Example of a fiber amplifier,” Phys. Rev. A 64, 033 812 (2001). [CrossRef]
Y. Xu, J. S. Vučković, R. K. Lee, O. J. Painter, A. Scherer, and A. Yariv, “Finite-difference time-domain calculation of spontaneous emission lifetime in a microcavity,” J. Opt. Soc. Am. B 16, 465–474 (1999). [CrossRef]
3.3. Photoluminescence Collection
W.-P. Huang, “Coupled-mode theory for optical waveguides: and overview,” J. Opt. Soc. Am. A 11, 963–983 (1994). [CrossRef]
3.4. Supermode Calculation Method
3.5. Simulation results
4. Discussion
V. R. Almeida, Q. Xu, C. A. Barrios, and M. Lipson, “Guiding and confining light in void nanostructure,” Opt. Lett. 29, 1209–1211 (2004). [CrossRef] [PubMed]
S. Koseki, B. Zhang, K. D. Greve, and Y. Yamamoto, “Monolithic integration of quantum dot containing microdisk microcavities coupled to air-suspended waveguides,” Appl. Phys. Lett. 94, 051 110 (2009). [CrossRef]
B. Gerardot, S. Seidl, P. Dalgarno, R. Warburton, M. Kroner, K. Karrai, A. Badolato, and P. Petroff, “Contrast in transmission spectroscopy of a single quantum dot,” Appl. Phys. Lett. 90, 221 106 (2007). [CrossRef]
A. N. Vamivakas, M. Atature, J. Dreiser, S. T. Yilmaz, A. Badolato, A. K. Swan, B. B. Goldberg, A. Imamoglu, and M. S. Unlu, “Strong Extinction of a Far-Field Laser Beam by a Single Quantum Dot,” Nano Lett. 7, 2892–2896 (2007). [CrossRef] [PubMed]
G. Wrigge, I. Gerhardt, J. Hwang, G. Zumofen, and V. Sandoghdar, “Efficient coupling of photons to a single molecule and the observation of its resonance fluorescence,” Nat. Phys. 4, 60–66 (2008). [CrossRef]
I. Gerhardt, G. Wrigge, P. Bushev, G. Zumofen, M. Agio, R. Pfab, and V. Sandoghdar, “Strong Extinction of a Laser Beam by a Single Molecule,” Phys. Rev. Lett. 98, 033 601 (2007). [CrossRef]
K. Srinivasan, C. P. Michael, R. Perahia, and O. Painter, “Investigations of a coherently driven semiconductor optical cavity QED system,” Phys. Rev. A 78, 033 839 (2008). [CrossRef]
A. Muller, E. B. Flagg, P. Bianucci, X. Wang, D. G. Deppe, W. Ma, J. Zhang, G. J. Salamo, M. Xiao, and C. K. Shih, “Resonance Fluorescence from a Coherently Driven Semiconductor Quantum Dot in a Cavity,” Phys. Rev. Lett. 99, 187 402 (2007). [CrossRef]
A. Muller, E. B. Flagg, P. Bianucci, X. Wang, D. G. Deppe, W. Ma, J. Zhang, G. J. Salamo, M. Xiao, and C. K. Shih, “Resonance Fluorescence from a Coherently Driven Semiconductor Quantum Dot in a Cavity,” Phys. Rev. Lett. 99, 187 402 (2007). [CrossRef]
A. Muller, E. B. Flagg, P. Bianucci, X. Wang, D. G. Deppe, W. Ma, J. Zhang, G. J. Salamo, M. Xiao, and C. K. Shih, “Resonance Fluorescence from a Coherently Driven Semiconductor Quantum Dot in a Cavity,” Phys. Rev. Lett. 99, 187 402 (2007). [CrossRef]
5. Summary and Conclusions
K. Srinivasan, C. P. Michael, R. Perahia, and O. Painter, “Investigations of a coherently driven semiconductor optical cavity QED system,” Phys. Rev. A 78, 033 839 (2008). [CrossRef]
C. P. Michael, M. Borselli, T. J. Johnson, and O. Painter, “An optical fiber taper probe for wafer-scale microphotonic device characterization,” Opt. Express 15, 4745–4752 (2007). [CrossRef] [PubMed]
Appendices
Appendix A - Classical point dipole radiation in the presence of a waveguide
Appendix B - Heisenberg equations
C.W. Gardiner and M. J. Collett, “Input and output in damped quantum systems: Quantum stochastic differential equations and the master equation,” Phys. Rev. A 31, 3761–3774 (1985). [CrossRef] [PubMed]
T. Søndergaard and B. Tromborg, “General theory for spontaneous emission in active dielectric microstructures: Example of a fiber amplifier,” Phys. Rev. A 64, 033 812 (2001). [CrossRef]
C.W. Gardiner and M. J. Collett, “Input and output in damped quantum systems: Quantum stochastic differential equations and the master equation,” Phys. Rev. A 31, 3761–3774 (1985). [CrossRef] [PubMed]
Acknowledgement
References and links
B. Gerardot, S. Seidl, P. Dalgarno, R. Warburton, M. Kroner, K. Karrai, A. Badolato, and P. Petroff, “Contrast in transmission spectroscopy of a single quantum dot,” Appl. Phys. Lett. 90, 221 106 (2007). [CrossRef] | |
A. N. Vamivakas, M. Atature, J. Dreiser, S. T. Yilmaz, A. Badolato, A. K. Swan, B. B. Goldberg, A. Imamoglu, and M. S. Unlu, “Strong Extinction of a Far-Field Laser Beam by a Single Quantum Dot,” Nano Lett. 7, 2892–2896 (2007). [CrossRef] [PubMed] | |
G. Wrigge, I. Gerhardt, J. Hwang, G. Zumofen, and V. Sandoghdar, “Efficient coupling of photons to a single molecule and the observation of its resonance fluorescence,” Nat. Phys. 4, 60–66 (2008). [CrossRef] | |
I. Gerhardt, G. Wrigge, P. Bushev, G. Zumofen, M. Agio, R. Pfab, and V. Sandoghdar, “Strong Extinction of a Laser Beam by a Single Molecule,” Phys. Rev. Lett. 98, 033 601 (2007). [CrossRef] | |
T. Aoki, B. Dayan, E. Wilcut, W. P. Bowen, A. S. Parkins, H. J. Kimble, T. J. Kippenberg, and K. J. Vahala, “Observation of Strong Coupling between One Atom and a Monolithic Microresonator,” Nature 443, 671–674 (2006). [CrossRef] [PubMed] | |
K. Srinivasan and O. Painter, “Linear and nonlinear optical spectroscopy of a strongly coupled microdisk-quantum dot system,” Nature 450, 862–865 (2007). [CrossRef] [PubMed] | |
K. Srinivasan, C. P. Michael, R. Perahia, and O. Painter, “Investigations of a coherently driven semiconductor optical cavity QED system,” Phys. Rev. A 78, 033 839 (2008). [CrossRef] | |
F. Le Kien, S. Dutta Gupta, V. I. Balykin, and K. Hakuta, “Spontaneous emission of a cesium atom near a nanofiber: Efficient coupling of light to guided modes,” Phys. Rev. A 72, 032 509 (2005). | |
V. V. Klimov and M. Ducloy, “Spontaneous emission rate of an excited atom placed near a nanofiber,” Phys. Rev. A 69, 013 812 (2004). [CrossRef] | |
K. Nayak, P. Melentiev, M. Morinaga, F. Le Kien, V. Balykin, and K. Hakuta, “Optical nanofiber as an efficient tool for manipulating and probing atomic fluorescences,” Opt. Express 15, 5431–5438 (2007). [CrossRef] [PubMed] | |
K. Srinivasan, O. Painter, A. Stintz, and S. Krishna, “Single quantum dot spectroscopy using a fiber taper waveguide near-field optic,” Appl. Phys. Lett. 91, 091 102 (2007). [CrossRef] | |
A. Muller, E. B. Flagg, P. Bianucci, X. Wang, D. G. Deppe, W. Ma, J. Zhang, G. J. Salamo, M. Xiao, and C. K. Shih, “Resonance Fluorescence from a Coherently Driven Semiconductor Quantum Dot in a Cavity,” Phys. Rev. Lett. 99, 187 402 (2007). [CrossRef] | |
A. W. Snyder and J. D. Love, Optical Waveguide Theory (Chapman and Hall, New York, 1983). | |
C. F. Wang, A. Badolato, I. Wilson-Rae, P. M. Petroff, E. Hu, J. Urayama, and A. Imamoglu, “Optical properties of single InAs quantum dots in close proximity to surfaces,” Appl. Phys. Lett. 85, 3423–3425 (2004). [CrossRef] | |
W.-P. Huang, “Coupled-mode theory for optical waveguides: and overview,” J. Opt. Soc. Am. A 11, 963–983 (1994). [CrossRef] | |
Lumerical FDTD Solutions. Specific software packages are identified in this paper to foster understanding. Such identification does not imply recommendation or endorsement by NIST, nor does it imply that the software identified is necessarily the best available for the purpose. | |
J. D. Jackson, Classical Electrodynamics (Wiley, New York, 1999), 3rd edn. | |
H. Benisty, R. Stanley, and M. Mayer, “Method of source terms for dipole emission modification in modes of arbitrary planar structures,” J. Opt. Soc. Am. A 15, 1192–1201 (1998). [CrossRef] | |
H. Rigneault and S. Monneret, “Modal analysis of spontaneous emission in a planar microcavity,” Phys. Rev. A 54, 2356–2368 (1996). [CrossRef] [PubMed] | |
H. P. Urbach and G. L. J. A. Rikken, “Spontaneous emission from a dielectric slab,” Phys. Rev. A 57, 3913–3930 (1998). [CrossRef] | |
C. P. Michael, M. Borselli, T. J. Johnson, and O. Painter, “An optical fiber taper probe for wafer-scale microphotonic device characterization,” Opt. Express 15, 4745–4752 (2007). [CrossRef] [PubMed] | |
P. Jayavel, H. Tanaka, T. Kita, O. Wada, H. Ebe, M. Sugawara, J. Tatebayashi, Y. Arakawa, Y. Nakat, and T. Akiyama, “Control of optical polarization anisotropy in edge emitting luminescence of InAs/GaAs self-assemble quantum dots,” Appl. Phys. Lett. 84 (2004). [CrossRef] | |
T. Søndergaard and B. Tromborg, “General theory for spontaneous emission in active dielectric microstructures: Example of a fiber amplifier,” Phys. Rev. A 64, 033 812 (2001). [CrossRef] | |
Y. Xu, J. S. Vučković, R. K. Lee, O. J. Painter, A. Scherer, and A. Yariv, “Finite-difference time-domain calculation of spontaneous emission lifetime in a microcavity,” J. Opt. Soc. Am. B 16, 465–474 (1999). [CrossRef] | |
Comsol Multiphysics. Specific software packages are identified in this paper to foster understanding. Such identification does not imply recommendation or endorsement by NIST, nor does it imply that the software identified is necessarily the best available for the purpose. | |
V. R. Almeida, Q. Xu, C. A. Barrios, and M. Lipson, “Guiding and confining light in void nanostructure,” Opt. Lett. 29, 1209–1211 (2004). [CrossRef] [PubMed] | |
M. Davanço and K. Srinivasan, “Optical fiber taper waveguides for highly efficient spectroscopy of single emitters deposited on a dielectric slab,” Manuscript in preparation (2009). | |
S. Koseki, B. Zhang, K. D. Greve, and Y. Yamamoto, “Monolithic integration of quantum dot containing microdisk microcavities coupled to air-suspended waveguides,” Appl. Phys. Lett. 94, 051 110 (2009). [CrossRef] | |
M. Davanço and K. Srinivasan, “Fiber-coupled semiconductor waveguides as an efficient optical interface to a single quantum dipole,” preprint: arxiv.org/abs/0905.2994 (2009). | |
C.W. Gardiner and M. J. Collett, “Input and output in damped quantum systems: Quantum stochastic differential equations and the master equation,” Phys. Rev. A 31, 3761–3774 (1985). [CrossRef] [PubMed] | |
C. Cohen-Tannoudji, J. Dupont-Roc, and G. Grynberg, Atom-Photon Interactions: Basic Processes and Applications (Wiley Interscience, New York, 1998). |
OCIS Codes
(230.5590) Optical devices : Quantum-well, -wire and -dot devices
(230.7370) Optical devices : Waveguides
(300.6280) Spectroscopy : Spectroscopy, fluorescence and luminescence
(350.4238) Other areas of optics : Nanophotonics and photonic crystals
(180.4243) Microscopy : Near-field microscopy
ToC Category:
Spectroscopy
History
Original Manuscript: April 17, 2009
Revised Manuscript: May 29, 2009
Manuscript Accepted: June 3, 2009
Published: June 9, 2009
Citation
Marcelo I. Davanco and Kartik Srinivasan, "Efficient spectroscopy of single
embedded emitters using optical fiber
taper waveguides," Opt. Express 17, 10542-10563 (2009)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-17-13-10542
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References
- B. Gerardot, S. Seidl, P. Dalgarno, R. Warburton, M. Kroner, K. Karrai, A. Badolato, and P. Petroff, "Contrast in transmission spectroscopy of a single quantum dot," Appl. Phys. Lett. 90, 221 106 (2007). [CrossRef]
- A. N. Vamivakas, M. Atature, J. Dreiser, S. T. Yilmaz, A. Badolato, A. K. Swan, B. B. Goldberg, A. Imamoglu, and M. S. Unlu, "Strong Extinction of a Far-Field Laser Beam by a Single Quantum Dot," Nano Lett. 7, 2892-2896 (2007). [CrossRef] [PubMed]
- G. Wrigge, I. Gerhardt, J. Hwang, G. Zumofen, and V. Sandoghdar, "Efficient coupling of photons to a single molecule and the observation of its resonance fluorescence," Nat. Phys. 4, 60-66 (2008). [CrossRef]
- I. Gerhardt, G. Wrigge, P. Bushev, G. Zumofen, M. Agio, R. Pfab, and V. Sandoghdar, "Strong Extinction of a Laser Beam by a Single Molecule," Phys. Rev. Lett. 98, 033 601 (2007). [CrossRef]
- T. Aoki, B. Dayan, E. Wilcut, W. P. Bowen, A. S. Parkins, H. J. Kimble, T. J. Kippenberg, and K. J. Vahala, "Observation of Strong Coupling between One Atom and a Monolithic Microresonator," Nature 443, 671-674 (2006). [CrossRef] [PubMed]
- K. Srinivasan and O. Painter, "Linear and nonlinear optical spectroscopy of a strongly coupled microdiskquantum dot system," Nature 450, 862-865 (2007). [CrossRef] [PubMed]
- K. Srinivasan, C. P. Michael, R. Perahia, and O. Painter, "Investigations of a coherently driven semiconductor optical cavity QED system," Phys. Rev. A 78, 033 839 (2008). [CrossRef]
- F. Le Kien, S. Dutta Gupta, V. I. Balykin, and K. Hakuta, "Spontaneous emission of a cesium atom near a nanofiber: Efficient coupling of light to guided modes," Phys. Rev. A 72, 032 509 (2005).
- V. V. Klimov and M. Ducloy, "Spontaneous emission rate of an excited atom placed near a nanofiber," Phys. Rev. A 69, 013 812 (2004). [CrossRef]
- K. Nayak, P. Melentiev, M. Morinaga, F. Le Kien, V. Balykin, and K. Hakuta, "Optical nanofiber as an efficient tool for manipulating and probing atomic fluorescences," Opt. Express 15, 5431-5438 (2007). [CrossRef] [PubMed]
- K. Srinivasan, O. Painter, A. Stintz, and S. Krishna, "Single quantum dot spectroscopy using a fiber taper waveguide near-field optic," Appl. Phys. Lett. 91, 091 102 (2007). [CrossRef]
- A. Muller, E. B. Flagg, P. Bianucci, X. Wang, D. G. Deppe, W. Ma, J. Zhang, G. J. Salamo, M. Xiao, and C. K. Shih, "Resonance Fluorescence from a Coherently Driven Semiconductor Quantum Dot in a Cavity," Phys. Rev. Lett. 99, 187 402 (2007). [CrossRef]
- A. W. Snyder and J. D. Love, Optical Waveguide Theory (Chapman and Hall, New York, 1983).
- C. F. Wang, A. Badolato, I. Wilson-Rae, P. M. Petroff, E. Hu, J. Urayama, and A. Imamoglu, "Optical properties of single InAs quantum dots in close proximity to surfaces," Appl. Phys. Lett. 85, 3423-3425 (2004). [CrossRef]
- W.-P. Huang, "Coupled-mode theory for optical waveguides: and overview," J. Opt. Soc. Am. A 11, 963-983 (1994). [CrossRef]
- Lumerical FDTD Solutions. Specific software packages are identified in this paper to foster understanding. Such identification does not imply recommendation or endorsement by NIST, nor does it imply that the software identified is necessarily the best available for the purpose.
- J. D. Jackson, Classical Electrodynamics (Wiley, New York, 1999), 3rd edn.
- H. Benisty, R. Stanley, and M. Mayer, "Method of source terms for dipole emission modification in modes of arbitrary planar structures," J. Opt. Soc. Am. A 15, 1192-1201 (1998). [CrossRef]
- H. Rigneault and S. Monneret, "Modal analysis of spontaneous emission in a planar microcavity," Phys. Rev. A 54, 2356-2368 (1996). [CrossRef] [PubMed]
- H. P. Urbach and G. L. J. A. Rikken, "Spontaneous emission from a dielectric slab," Phys. Rev. A 57, 3913-3930 (1998). [CrossRef]
- C. P. Michael, M. Borselli, T. J. Johnson, and O. Painter, "An optical fiber taper probe for wafer-scale microphotonic device characterization," Opt. Express 15, 4745-4752 (2007). [CrossRef] [PubMed]
- P. Jayavel, H. Tanaka, T. Kita, O. Wada, H. Ebe, M. Sugawara, J. Tatebayashi, Y. Arakawa, Y. Nakat, and T. Akiyama, "Control of optical polarization anisotropy in edge emitting luminescence of InAs/GaAs selfassemble quantum dots," Appl. Phys. Lett. 84 (2004). [CrossRef]
- T. Søndergaard and B. Tromborg, "General theory for spontaneous emission in active dielectric microstructures: Example of a fiber amplifier," Phys. Rev. A 64, 033 812 (2001). [CrossRef]
- Y. Xu, J. S. Vuckovic, R. K. Lee, O. J. Painter, A. Scherer, and A. Yariv, "Finite-difference time-domain calculation of spontaneous emission lifetime in a microcavity," J. Opt. Soc. Am. B 16, 465-474 (1999). [CrossRef]
- Comsol Multiphysics. Specific software packages are identified in this paper to foster understanding. Such identification does not imply recommendation or endorsement by NIST, nor does it imply that the software identified is necessarily the best available for the purpose.
- V. R. Almeida, Q. Xu, C. A. Barrios, and M. Lipson, "Guiding and confining light in void nanostructure," Opt. Lett. 29, 1209-1211 (2004). [CrossRef] [PubMed]
- M. Davanco and K. Srinivasan, "Optical fiber taper waveguides for highly efficient spectroscopy of single emitters deposited on a dielectric slab," Manuscript in preparation (2009).
- S. Koseki, B. Zhang, K. D. Greve, and Y. Yamamoto, "Monolithic integration of quantum dot containing microdisk microcavities coupled to air-suspended waveguides," Appl. Phys. Lett. 94, 051 110 (2009). [CrossRef]
- M. Davanco and K. Srinivasan, "Fiber-coupled semiconductor waveguides as an efficient optical interface to a single quantum dipole," preprint: arxiv.org/abs/0905.2994 (2009).
- C. W. Gardiner and M. J. Collett, "Input and output in damped quantum systems: Quantum stochastic differential equations and the master equation," Phys. Rev. A 31, 3761-3774 (1985). [CrossRef] [PubMed]
- C. Cohen-Tannoudji, J. Dupont-Roc, and G. Grynberg, Atom-Photon Interactions: Basic Processes and Applications (Wiley Interscience, New York, 1998).
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