Widely tunable midinfrared difference frequency generation in orientation-patterned GaAs pumped with a femtosecond Tm-fiber system.
Identifieur interne : 000595 ( Ncbi/Merge ); précédent : 000594; suivant : 000596Widely tunable midinfrared difference frequency generation in orientation-patterned GaAs pumped with a femtosecond Tm-fiber system.
Auteurs : C R Phillips [États-Unis] ; J. Jiang ; C. Mohr ; A C Lin ; C. Langrock ; M. Snure ; D. Bliss ; M. Zhu ; I. Hartl ; J S Harris ; M E Fermann ; M M FejerSource :
- Optics letters [ 1539-4794 ] ; 2012.
Descripteurs français
- KwdFr :
- MESH :
English descriptors
- KwdEn :
- MESH :
- chemical : Arsenicals, Gallium, Thulium.
- Optical Fibers, Optical Processes, Time Factors.
Abstract
We demonstrate a midinfrared source tunable from 6.7 to 12.7 μm via difference frequency generation (DFG) in orientation-patterned GaAs, with 1.3 mW average output power. The input pulses are generated via Raman self-frequency shift of a femtosecond Tm-doped-fiber laser system in a fluoride fiber. We numerically model the DFG process and show good agreement between simulations and experiments. We use this numerical model to show an improved design using longer pump pulses.
PubMed: 22825181
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pubmed:22825181Le document en format XML
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<front><div type="abstract" xml:lang="en">We demonstrate a midinfrared source tunable from 6.7 to 12.7 μm via difference frequency generation (DFG) in orientation-patterned GaAs, with 1.3 mW average output power. The input pulses are generated via Raman self-frequency shift of a femtosecond Tm-doped-fiber laser system in a fluoride fiber. We numerically model the DFG process and show good agreement between simulations and experiments. We use this numerical model to show an improved design using longer pump pulses.</div>
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<Abstract><AbstractText>We demonstrate a midinfrared source tunable from 6.7 to 12.7 μm via difference frequency generation (DFG) in orientation-patterned GaAs, with 1.3 mW average output power. The input pulses are generated via Raman self-frequency shift of a femtosecond Tm-doped-fiber laser system in a fluoride fiber. We numerically model the DFG process and show good agreement between simulations and experiments. We use this numerical model to show an improved design using longer pump pulses.</AbstractText>
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