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Generation of 120-fs laser pulses at 1-GHz repetition rate derived from continuous wave laser diode |
Optics Express, Vol. 19, Issue 23, pp. 22402-22409 (2011)
http://dx.doi.org/10.1364/OE.19.022402
Acrobat PDF (6265 KB)
Abstract
We report the first demonstration of continuous-wave laser diode based 100-fs-class pulse lasers operating at a gigahertz repetition rate without a mode-locking technique. We describe the performance of a 1-W, 120-fs optical pulse train at 1 GHz and a 1-W, 80-fs optical pulse train at 250 MHz by using a simple configuration. Sub-100-fs pulse durations are achieved by using a progressive expansion of the spectrum in the self-phase modulation process in an erbium-doped fibre amplifier. Our scheme can achieve continuously tunable repetition rate in the range of ±20%, and develop powerful tools for use in nanomechanical systems and nanobiotechnology.
© 2011 OSA
1. Introduction
A. Bruchhausen, R. Gebs, F. Hudert, D. Issenmann, G. Klatt, A. Bartels, O. Schecker, R. Waitz, A. Erbe, E. Scheer, J.-R. Huntzinger, A. Mlayah, and T. Dekorsy, “Subharmonic resonant optical excitation of confined acoustic modes in a free-standing semiconductor membrane at GHz frequencies with a high-repetition-rate femtosecond laser,” Phys. Rev. Lett. 106(7), 077401 (2011). [CrossRef] [PubMed]
A. Ehlers, I. Riemann, S. Martin, R. Le Harzic, A. Bartels, C. Janke, and K. König, “High (1 GHz) repetition rate compact femtosecond laser: a powerful multiphoton tool for nanomedicine and nanobiotechnology,” J. Appl. Phys. 102(1), 014701 (2007). [CrossRef]
S. W. Chu, T. M. Liu, C. K. Sun, C. Y. Lin, and H. J. Tsai, “Real-time second-harmonic-generation microscopy based on a 2-GHz repetition rate Ti:sapphire laser,” Opt. Express 11(8), 933–938 (2003). [CrossRef] [PubMed]
A. Bartels, R. Cerna, C. Kistner, A. Thoma, F. Hudert, C. Janke, and T. Dekorsy, “Ultrafast time-domain spectroscopy based on high-speed asynchronous optical sampling,” Rev. Sci. Instrum. 78(3), 035107 (2007). [CrossRef] [PubMed]
A. Bartels, D. Heinecke, and S. A. Diddams, “10-GHz self-referenced optical frequency comb,” Science 326(5953), 681 (2009). [CrossRef] [PubMed]
A. Ishizawa, T. Nishikawa, A. Mizutori, H. Takara, S. Aozasa, A. Mori, H. Nakano, A. Takada, and M. Koga, “Octave-spanning frequency comb generated by 250 fs pulse train emitted from 25 GHz externally phase-modulated laser diode for carrier-envelope-offset-locking,” Electron. Lett. 46(19), 1343–1344 (2010). [CrossRef]
A. Bruchhausen, R. Gebs, F. Hudert, D. Issenmann, G. Klatt, A. Bartels, O. Schecker, R. Waitz, A. Erbe, E. Scheer, J.-R. Huntzinger, A. Mlayah, and T. Dekorsy, “Subharmonic resonant optical excitation of confined acoustic modes in a free-standing semiconductor membrane at GHz frequencies with a high-repetition-rate femtosecond laser,” Phys. Rev. Lett. 106(7), 077401 (2011). [CrossRef] [PubMed]
A. Ishizawa, T. Nishikawa, A. Mizutori, H. Takara, S. Aozasa, A. Mori, H. Nakano, A. Takada, and M. Koga, “Octave-spanning frequency comb generated by 250 fs pulse train emitted from 25 GHz externally phase-modulated laser diode for carrier-envelope-offset-locking,” Electron. Lett. 46(19), 1343–1344 (2010). [CrossRef]
C. H. Li, A. J. Benedick, P. Fendel, A. G. Glenday, F. X. Kärtner, D. F. Phillips, D. Sasselov, A. Szentgyorgyi, and R. L. Walsworth, “A laser frequency comb that enables radial velocity measurements with a precision of 1 cm−1,” Nature 452(7187), 610–612 (2008). [CrossRef] [PubMed]
T. Steinmetz, T. Wilken, C. Araujo-Hauck, R. Holzwarth, T. W. Hänsch, L. Pasquini, A. Manescau, S. D’Odorico, M. T. Murphy, T. Kentischer, W. Schmidt, and T. Udem, “Laser frequency combs for astronomical observations,” Science 321(5894), 1335–1337 (2008). [CrossRef] [PubMed]
Z. Jiang, C.-B. Huang, D. E. Leaird, and A. M. Weiner, “Optical arbitrary waveform processing of more than 100 spectral comb lines,” Nat. Photonics 1(8), 463–467 (2007). [CrossRef]
T. Kobayashi, H. Yao, K. Amano, Y. Fukushima, A. Morimoto, and T. Sueta, “Optical pulse compression using high-frequency electrooptic phase modulation,” IEEE J. Quantum Electron. 24(2), 382–387 (1988). [CrossRef]
T. Otsuji, M. Yaita, T. Nagatsuma, and E. Sano, “10-80-Gb/s highly extinctive electrooptic pulse pattern generation,” IEEE J. Sel. Top. Quantum Electron. 2(3), 643–649 (1996). [CrossRef]
M. Hanna, P. A. Lacourt, S. Poinsot, and J. M. Dudley, “Optical pulse generation using soliton-assisted time-lens compression,” Opt. Express 13(5), 1743–1748 (2005). [CrossRef] [PubMed]
I. Morohashi, T. Sakamoto, H. Sotobayashi, T. Kawanishi, and I. Hosako, “Broadband wavelength-tunable ultrashort pulse source using a Mach-Zehnder modulator and dispersion-flattened dispersion-decreasing fiber,” Opt. Lett. 34(15), 2297–2299 (2009). [CrossRef] [PubMed]
M. Hanna, P. A. Lacourt, S. Poinsot, and J. M. Dudley, “Optical pulse generation using soliton-assisted time-lens compression,” Opt. Express 13(5), 1743–1748 (2005). [CrossRef] [PubMed]
Y. Ozeki, S. Takasaka, J. Hiroishi, R. Sugizaki, T. Yagi, M. Sakano, and S. Namiki, “Generation of 1 THz repetition rate, 97 fs optical pulse train based on comb-like profiled fibre,” Electron. Lett. 41(19), 1048–1050 (2005). [CrossRef]
T. Inoue, N. Kumano, M. Takahashi, T. Yagi, and M. Sakano, “Generation of 80-nm wavelength-tunable 100-fs pulse based on comblike profiled fiber comprised of HNLF and zero dispersion-slope NZDSF,” J. Lightwave Technol. 25(1), 165–169 (2007). [CrossRef]
Y. Ozeki, S. Takasaka, J. Hiroishi, R. Sugizaki, T. Yagi, M. Sakano, and S. Namiki, “Generation of 1 THz repetition rate, 97 fs optical pulse train based on comb-like profiled fibre,” Electron. Lett. 41(19), 1048–1050 (2005). [CrossRef]
T. Inoue, N. Kumano, M. Takahashi, T. Yagi, and M. Sakano, “Generation of 80-nm wavelength-tunable 100-fs pulse based on comblike profiled fiber comprised of HNLF and zero dispersion-slope NZDSF,” J. Lightwave Technol. 25(1), 165–169 (2007). [CrossRef]
A. Ishizawa, T. Nishikawa, A. Mizutori, H. Takara, S. Aozasa, A. Mori, H. Nakano, A. Takada, and M. Koga, “Octave-spanning frequency comb generated by 250 fs pulse train emitted from 25 GHz externally phase-modulated laser diode for carrier-envelope-offset-locking,” Electron. Lett. 46(19), 1343–1344 (2010). [CrossRef]
2. Phase-modulated lasers with 25-GHz repetition rate
A. Ishizawa, T. Nishikawa, A. Mizutori, H. Takara, S. Aozasa, A. Mori, H. Nakano, A. Takada, and M. Koga, “Octave-spanning frequency comb generated by 250 fs pulse train emitted from 25 GHz externally phase-modulated laser diode for carrier-envelope-offset-locking,” Electron. Lett. 46(19), 1343–1344 (2010). [CrossRef]
3. 120-fs pulse generation at 1-GHz repetition rate
4. Short pulse generation at 250-MHz repetition rate
T. Otsuji, M. Yaita, T. Nagatsuma, and E. Sano, “10-80-Gb/s highly extinctive electrooptic pulse pattern generation,” IEEE J. Sel. Top. Quantum Electron. 2(3), 643–649 (1996). [CrossRef]
5. Conclusion
Acknowledgments
References and links
A. Bruchhausen, R. Gebs, F. Hudert, D. Issenmann, G. Klatt, A. Bartels, O. Schecker, R. Waitz, A. Erbe, E. Scheer, J.-R. Huntzinger, A. Mlayah, and T. Dekorsy, “Subharmonic resonant optical excitation of confined acoustic modes in a free-standing semiconductor membrane at GHz frequencies with a high-repetition-rate femtosecond laser,” Phys. Rev. Lett. 106(7), 077401 (2011). [CrossRef] [PubMed] | |
A. Ehlers, I. Riemann, S. Martin, R. Le Harzic, A. Bartels, C. Janke, and K. König, “High (1 GHz) repetition rate compact femtosecond laser: a powerful multiphoton tool for nanomedicine and nanobiotechnology,” J. Appl. Phys. 102(1), 014701 (2007). [CrossRef] | |
S. W. Chu, T. M. Liu, C. K. Sun, C. Y. Lin, and H. J. Tsai, “Real-time second-harmonic-generation microscopy based on a 2-GHz repetition rate Ti:sapphire laser,” Opt. Express 11(8), 933–938 (2003). [CrossRef] [PubMed] | |
A. Bartels, R. Cerna, C. Kistner, A. Thoma, F. Hudert, C. Janke, and T. Dekorsy, “Ultrafast time-domain spectroscopy based on high-speed asynchronous optical sampling,” Rev. Sci. Instrum. 78(3), 035107 (2007). [CrossRef] [PubMed] | |
A. Bartels, D. Heinecke, and S. A. Diddams, “10-GHz self-referenced optical frequency comb,” Science 326(5953), 681 (2009). [CrossRef] [PubMed] | |
A. Ishizawa, T. Nishikawa, A. Mizutori, H. Takara, S. Aozasa, A. Mori, H. Nakano, A. Takada, and M. Koga, “Octave-spanning frequency comb generated by 250 fs pulse train emitted from 25 GHz externally phase-modulated laser diode for carrier-envelope-offset-locking,” Electron. Lett. 46(19), 1343–1344 (2010). [CrossRef] | |
C. H. Li, A. J. Benedick, P. Fendel, A. G. Glenday, F. X. Kärtner, D. F. Phillips, D. Sasselov, A. Szentgyorgyi, and R. L. Walsworth, “A laser frequency comb that enables radial velocity measurements with a precision of 1 cm−1,” Nature 452(7187), 610–612 (2008). [CrossRef] [PubMed] | |
T. Steinmetz, T. Wilken, C. Araujo-Hauck, R. Holzwarth, T. W. Hänsch, L. Pasquini, A. Manescau, S. D’Odorico, M. T. Murphy, T. Kentischer, W. Schmidt, and T. Udem, “Laser frequency combs for astronomical observations,” Science 321(5894), 1335–1337 (2008). [CrossRef] [PubMed] | |
Z. Jiang, C.-B. Huang, D. E. Leaird, and A. M. Weiner, “Optical arbitrary waveform processing of more than 100 spectral comb lines,” Nat. Photonics 1(8), 463–467 (2007). [CrossRef] | |
T. Kobayashi, H. Yao, K. Amano, Y. Fukushima, A. Morimoto, and T. Sueta, “Optical pulse compression using high-frequency electrooptic phase modulation,” IEEE J. Quantum Electron. 24(2), 382–387 (1988). [CrossRef] | |
T. Otsuji, M. Yaita, T. Nagatsuma, and E. Sano, “10-80-Gb/s highly extinctive electrooptic pulse pattern generation,” IEEE J. Sel. Top. Quantum Electron. 2(3), 643–649 (1996). [CrossRef] | |
M. Hanna, P. A. Lacourt, S. Poinsot, and J. M. Dudley, “Optical pulse generation using soliton-assisted time-lens compression,” Opt. Express 13(5), 1743–1748 (2005). [CrossRef] [PubMed] | |
I. Morohashi, T. Sakamoto, H. Sotobayashi, T. Kawanishi, and I. Hosako, “Broadband wavelength-tunable ultrashort pulse source using a Mach-Zehnder modulator and dispersion-flattened dispersion-decreasing fiber,” Opt. Lett. 34(15), 2297–2299 (2009). [CrossRef] [PubMed] | |
Y. Ozeki, S. Takasaka, J. Hiroishi, R. Sugizaki, T. Yagi, M. Sakano, and S. Namiki, “Generation of 1 THz repetition rate, 97 fs optical pulse train based on comb-like profiled fibre,” Electron. Lett. 41(19), 1048–1050 (2005). [CrossRef] | |
T. Inoue, N. Kumano, M. Takahashi, T. Yagi, and M. Sakano, “Generation of 80-nm wavelength-tunable 100-fs pulse based on comblike profiled fiber comprised of HNLF and zero dispersion-slope NZDSF,” J. Lightwave Technol. 25(1), 165–169 (2007). [CrossRef] |
OCIS Codes
(060.2310) Fiber optics and optical communications : Fiber optics
(140.3510) Lasers and laser optics : Lasers, fiber
(190.4370) Nonlinear optics : Nonlinear optics, fibers
(320.5520) Ultrafast optics : Pulse compression
(320.7090) Ultrafast optics : Ultrafast lasers
ToC Category:
Ultrafast Optics
History
Original Manuscript: August 22, 2011
Revised Manuscript: October 5, 2011
Manuscript Accepted: October 5, 2011
Published: October 24, 2011
Virtual Issues
Vol. 7, Iss. 1 Virtual Journal for Biomedical Optics
Citation
Atsushi Ishizawa, Tadashi Nishikawa, Akira Mizutori, Hidehiko Takara, Hidetoshi Nakano, Tetsuomi Sogawa, Atsushi Takada, and Masafumi Koga, "Generation of 120-fs laser pulses at 1-GHz repetition rate derived from continuous wave laser diode," Opt. Express 19, 22402-22409 (2011)
http://www.opticsinfobase.org/vjbo/abstract.cfm?URI=oe-19-23-22402
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References
- A. Bruchhausen, R. Gebs, F. Hudert, D. Issenmann, G. Klatt, A. Bartels, O. Schecker, R. Waitz, A. Erbe, E. Scheer, J.-R. Huntzinger, A. Mlayah, and T. Dekorsy, “Subharmonic resonant optical excitation of confined acoustic modes in a free-standing semiconductor membrane at GHz frequencies with a high-repetition-rate femtosecond laser,” Phys. Rev. Lett.106(7), 077401 (2011). [CrossRef] [PubMed]
- A. Ehlers, I. Riemann, S. Martin, R. Le Harzic, A. Bartels, C. Janke, and K. König, “High (1 GHz) repetition rate compact femtosecond laser: a powerful multiphoton tool for nanomedicine and nanobiotechnology,” J. Appl. Phys.102(1), 014701 (2007). [CrossRef]
- S. W. Chu, T. M. Liu, C. K. Sun, C. Y. Lin, and H. J. Tsai, “Real-time second-harmonic-generation microscopy based on a 2-GHz repetition rate Ti:sapphire laser,” Opt. Express11(8), 933–938 (2003). [CrossRef] [PubMed]
- A. Bartels, R. Cerna, C. Kistner, A. Thoma, F. Hudert, C. Janke, and T. Dekorsy, “Ultrafast time-domain spectroscopy based on high-speed asynchronous optical sampling,” Rev. Sci. Instrum.78(3), 035107 (2007). [CrossRef] [PubMed]
- A. Bartels, D. Heinecke, and S. A. Diddams, “10-GHz self-referenced optical frequency comb,” Science326(5953), 681 (2009). [CrossRef] [PubMed]
- A. Ishizawa, T. Nishikawa, A. Mizutori, H. Takara, S. Aozasa, A. Mori, H. Nakano, A. Takada, and M. Koga, “Octave-spanning frequency comb generated by 250 fs pulse train emitted from 25 GHz externally phase-modulated laser diode for carrier-envelope-offset-locking,” Electron. Lett.46(19), 1343–1344 (2010). [CrossRef]
- C. H. Li, A. J. Benedick, P. Fendel, A. G. Glenday, F. X. Kärtner, D. F. Phillips, D. Sasselov, A. Szentgyorgyi, and R. L. Walsworth, “A laser frequency comb that enables radial velocity measurements with a precision of 1 cm−1,” Nature452(7187), 610–612 (2008). [CrossRef] [PubMed]
- T. Steinmetz, T. Wilken, C. Araujo-Hauck, R. Holzwarth, T. W. Hänsch, L. Pasquini, A. Manescau, S. D’Odorico, M. T. Murphy, T. Kentischer, W. Schmidt, and T. Udem, “Laser frequency combs for astronomical observations,” Science321(5894), 1335–1337 (2008). [CrossRef] [PubMed]
- Z. Jiang, C.-B. Huang, D. E. Leaird, and A. M. Weiner, “Optical arbitrary waveform processing of more than 100 spectral comb lines,” Nat. Photonics1(8), 463–467 (2007). [CrossRef]
- T. Kobayashi, H. Yao, K. Amano, Y. Fukushima, A. Morimoto, and T. Sueta, “Optical pulse compression using high-frequency electrooptic phase modulation,” IEEE J. Quantum Electron.24(2), 382–387 (1988). [CrossRef]
- T. Otsuji, M. Yaita, T. Nagatsuma, and E. Sano, “10-80-Gb/s highly extinctive electrooptic pulse pattern generation,” IEEE J. Sel. Top. Quantum Electron.2(3), 643–649 (1996). [CrossRef]
- M. Hanna, P. A. Lacourt, S. Poinsot, and J. M. Dudley, “Optical pulse generation using soliton-assisted time-lens compression,” Opt. Express13(5), 1743–1748 (2005). [CrossRef] [PubMed]
- I. Morohashi, T. Sakamoto, H. Sotobayashi, T. Kawanishi, and I. Hosako, “Broadband wavelength-tunable ultrashort pulse source using a Mach-Zehnder modulator and dispersion-flattened dispersion-decreasing fiber,” Opt. Lett.34(15), 2297–2299 (2009). [CrossRef] [PubMed]
- Y. Ozeki, S. Takasaka, J. Hiroishi, R. Sugizaki, T. Yagi, M. Sakano, and S. Namiki, “Generation of 1 THz repetition rate, 97 fs optical pulse train based on comb-like profiled fibre,” Electron. Lett.41(19), 1048–1050 (2005). [CrossRef]
- T. Inoue, N. Kumano, M. Takahashi, T. Yagi, and M. Sakano, “Generation of 80-nm wavelength-tunable 100-fs pulse based on comblike profiled fiber comprised of HNLF and zero dispersion-slope NZDSF,” J. Lightwave Technol.25(1), 165–169 (2007). [CrossRef]
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