Crossref journal-article
Springer Science and Business Media LLC
Nature Photonics (297)
Bibliography

Zlatanovic, S., Park, J. S., Moro, S., Boggio, J. M. C., Divliansky, I. B., Alic, N., Mookherjea, S., & Radic, S. (2010). Mid-infrared wavelength conversion in silicon waveguides using ultracompact telecom-band-derived pump source. Nature Photonics, 4(8), 561–564.

Authors 8
  1. Sanja Zlatanovic (first)
  2. Jung S. Park (additional)
  3. Slaven Moro (additional)
  4. Jose M. Chavez Boggio (additional)
  5. Ivan B. Divliansky (additional)
  6. Nikola Alic (additional)
  7. Shayan Mookherjea (additional)
  8. Stojan Radic (additional)
References 18 Referenced 250
  1. Ebrahim-Zadeh, M. & Sorokina, I. T. Mid-Infrared Coherent Sources and Applications (Springer, 2008). (10.1007/978-1-4020-6463-0)
  2. Raghunathan, V., Borlaug, D., Rice, R. & Jalali, B. Demonstration of a mid-infrared silicon Raman amplifier. Opt. Express 15, 14355–14362 (2007). (10.1364/OE.15.014355) / Opt. Express by V Raghunathan (2007)
  3. Soref, R. A., Emelett, S. J. & Buchwald, W. R. Silicon waveguided components for the long-wave infrared. J. Opt. A 8, 840–848 (2006). (10.1088/1464-4258/8/10/004) / J. Opt. A by RA Soref (2006)
  4. Kameyama, S. et al. Development of 1.6 µm continuous-wave modulation hard-target differential absorption LIDAR system for CO2 sensing. Opt. Lett. 34, 1513–1515 (2009). (10.1364/OL.34.001513) / Opt. Lett. by S Kameyama (2009)
  5. Bashkansky, M., Burris, H. R., Funk, E. E., Mahon, R. & Moore, C. I. RF phase-coded random-modulation LIDAR. Opt. Commun. 231, 93–98 (2004). (10.1016/j.optcom.2003.12.029) / Opt. Commun. by M Bashkansky (2004)
  6. Wysocki, G. et al. Widely tunable mode-hop free external cavity quantum cascade lasers for high resolution spectroscopy and chemical sensing. Appl. Phys. B 92, 305–311 (2008). (10.1007/s00340-008-3047-x) / Appl. Phys. B by G Wysocki (2008)
  7. Cathabard, O., Teissier, R., Devenson, J. & Baranov, A. InAs-based distributed feedback quantum cascade lasers. Electron. Lett. 45, 1028–1030 (2009). (10.1049/el.2009.1169) / Electron. Lett. by O Cathabard (2009)
  8. Foster, M. A. et al. Broad-band optical parametric gain on a silicon photonic chip. Nature 441, 960–963(2006). (10.1038/nature04932) / Nature by MA Foster (2006)
  9. Raghunathan, V., Shori, R., Stafsudd, O. & Jalali, B. Nonlinear absorption in silicon and the prospects of mid-infrared silicon Raman lasers. J. Phys. Status Solidi A 203, R38–R40 (2006). (10.1002/pssa.200622062) / J. Phys. Status Solidi A by V Raghunathan (2006)
  10. Liu, X., Osgood, R. M., Vlasov, Y. A. & Green, W. M. J. Broadband Mid-Infrared Parametric Amplification, Net Off-Chip Gain, and Cascaded Four-Wave Mixing in Silicon Photonic Wires, 6th International Conference on Group IV Photonics (IEEE, San Francisco, 2009).
  11. Rong, H. et al. Monolithic integrated Raman silicon laser. Opt. Express 14, 6705–6712 (2006). (10.1364/OE.14.006705) / Opt. Express by H Rong (2006)
  12. Boggio, J. M. C. et al. Tunable parametric all-fiber short-wavelength-IR transmitter. J. Lightwave Technol. 28, 443–447 (2010). (10.1109/JLT.2009.2032303) / J. Lightwave Technol. by JMC Boggio (2010)
  13. Boggio, J. M. C. et al. Short wavelength infrared frequency conversion in ultra-compact fiber device. Opt. Exp. 18, 439–435 (2010). (10.1364/OE.18.000439) / Opt. Exp. by JMC Boggio (2010)
  14. Bristow, A. D., Rotenberg, N. & van Driel, H. M. Two-photon absorption and Kerr coefficients of silicon for 850–2,200 nm. Appl. Phys. Lett. 90, 191104 (2007). (10.1063/1.2737359) / Appl. Phys. Lett. by AD Bristow (2007)
  15. Lin, Q. et al. Dispersion of silicon nonlinearities in the near infrared region. Appl. Phys. Lett. 91, 021111 (2007). (10.1063/1.2750523) / Appl. Phys. Lett. by Q Lin (2007)
  16. Turner-Foster, A. C., Foster, M. A., Salem, R., Gaeta, A. L. & Lipson, M. Frequency Conversion in Silicon Waveguides Over Two-Thirds of an Octave, Conference on Lasers and Electrooptics (OSA/IEEE, Baltimore, 2009). (10.1364/CLEO.2009.CFR4)
  17. Busse, L. E., McCabe, G. H. & Aggarwal, I. D. Wavelength dependence of the scattering loss in fluoride optical fibers. Opt. Lett. 15, 423–424 (1990). (10.1364/OL.15.000423) / Opt. Lett. by LE Busse (1990)
  18. Jalali, B. et al. Prospects for silicon mid-IR Raman lasers. IEEE J. Sel. Topics Quantum Electron. 12, 1618–1627 (2006). (10.1109/JSTQE.2006.885340) / IEEE J. Sel. Topics Quantum Electron. by B Jalali (2006)
Dates
Type When
Created 15 years, 3 months ago (May 23, 2010, 1:35 p.m.)
Deposited 2 years, 3 months ago (May 18, 2023, 7:59 p.m.)
Indexed 1 month ago (Aug. 6, 2025, 8:58 a.m.)
Issued 15 years, 3 months ago (May 23, 2010)
Published 15 years, 3 months ago (May 23, 2010)
Published Online 15 years, 3 months ago (May 23, 2010)
Published Print 15 years, 1 month ago (Aug. 1, 2010)
Funders 0

None

@article{Zlatanovic_2010, title={Mid-infrared wavelength conversion in silicon waveguides using ultracompact telecom-band-derived pump source}, volume={4}, ISSN={1749-4893}, url={http://dx.doi.org/10.1038/nphoton.2010.117}, DOI={10.1038/nphoton.2010.117}, number={8}, journal={Nature Photonics}, publisher={Springer Science and Business Media LLC}, author={Zlatanovic, Sanja and Park, Jung S. and Moro, Slaven and Boggio, Jose M. Chavez and Divliansky, Ivan B. and Alic, Nikola and Mookherjea, Shayan and Radic, Stojan}, year={2010}, month=may, pages={561–564} }