Cryogenically cooled cw-pumped double-pass Ti:sapphire amplifier emitting μJ pulse energies

Research output: Chapter in book/report/conference proceedingConference contributionResearchpeer review

Authors

  • N. Pfullmann
  • M. Siegel
  • S. Rausch
  • T. Binhammer
  • U. Morgner

External Research Organisations

  • Laser Zentrum Hannover e.V. (LZH)
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Details

Original languageEnglish
Title of host publicationLasers and Electro-Optics/Quantum Electronics and Laser Science Conference
Subtitle of host publication2010 Laser Science to Photonic Applications, CLEO/QELS 2010
PublisherAssociation for Computing Machinery (ACM)
ISBN (print)9781557528902
Publication statusPublished - 2010
EventConference on Lasers and Electro-Optics, CLEO 2010 - San Jose, CA, United States
Duration: 16 May 201021 May 2010

Publication series

NameLasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010

Abstract

A double pass cw-pumped Ti:sapphire amplifier delivering 1.6μJ pulses at 1 MHz is presented. Furthermore a simple analytical model for the amplifier is deduced and concepts for further energy scaling are explored.

ASJC Scopus subject areas

Cite this

Cryogenically cooled cw-pumped double-pass Ti:sapphire amplifier emitting μJ pulse energies. / Pfullmann, N.; Siegel, M.; Rausch, S. et al.
Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010. Association for Computing Machinery (ACM), 2010. 5500433 (Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010).

Research output: Chapter in book/report/conference proceedingConference contributionResearchpeer review

Pfullmann, N, Siegel, M, Rausch, S, Binhammer, T & Morgner, U 2010, Cryogenically cooled cw-pumped double-pass Ti:sapphire amplifier emitting μJ pulse energies. in Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010., 5500433, Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010, Association for Computing Machinery (ACM), Conference on Lasers and Electro-Optics, CLEO 2010, San Jose, CA, United States, 16 May 2010. https://doi.org/10.1364/cleo.2010.ctuk2
Pfullmann, N., Siegel, M., Rausch, S., Binhammer, T., & Morgner, U. (2010). Cryogenically cooled cw-pumped double-pass Ti:sapphire amplifier emitting μJ pulse energies. In Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010 Article 5500433 (Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010). Association for Computing Machinery (ACM). https://doi.org/10.1364/cleo.2010.ctuk2
Pfullmann N, Siegel M, Rausch S, Binhammer T, Morgner U. Cryogenically cooled cw-pumped double-pass Ti:sapphire amplifier emitting μJ pulse energies. In Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010. Association for Computing Machinery (ACM). 2010. 5500433. (Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010). doi: 10.1364/cleo.2010.ctuk2
Pfullmann, N. ; Siegel, M. ; Rausch, S. et al. / Cryogenically cooled cw-pumped double-pass Ti:sapphire amplifier emitting μJ pulse energies. Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010. Association for Computing Machinery (ACM), 2010. (Lasers and Electro-Optics/Quantum Electronics and Laser Science Conference: 2010 Laser Science to Photonic Applications, CLEO/QELS 2010).
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abstract = "A double pass cw-pumped Ti:sapphire amplifier delivering 1.6μJ pulses at 1 MHz is presented. Furthermore a simple analytical model for the amplifier is deduced and concepts for further energy scaling are explored.",
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