Publication:
Energy scaling of a multipass-cavity mode-locked femtosecond bulk laser with a carbon nanotube saturable absorber

dc.contributor.authorBaylam, Isinsu
dc.contributor.authorÖzharar, Sarper
dc.contributor.authorÇankaya, Hüseyin
dc.contributor.authorChoi, Sun-young
dc.contributor.authorKim, Kihong
dc.contributor.authorRotermund, Fabian
dc.contributor.authorGriebner, Uwe
dc.contributor.authorPetrov, Valentin P.
dc.contributor.authorSennaroǧlu, Alphan
dc.contributor.institutionBaylam, Isinsu, Department of Physics, Koç Üniversitesi, Istanbul, Turkey
dc.contributor.institutionÖzharar, Sarper, College of Arts and Sciences, Bahçeşehir Üniversitesi, Istanbul, Turkey
dc.contributor.institutionÇankaya, Hüseyin, Department of Physics, Koç Üniversitesi, Istanbul, Turkey
dc.contributor.institutionChoi, Sun-young, Department of Physics, Ajou University, Suwon, South Korea
dc.contributor.institutionKim, Kihong, Department of Physics, Ajou University, Suwon, South Korea
dc.contributor.institutionRotermund, Fabian, Department of Physics, Ajou University, Suwon, South Korea
dc.contributor.institutionGriebner, Uwe, Max Born Institute, Berlin, Germany
dc.contributor.institutionPetrov, Valentin P., Max Born Institute, Berlin, Germany
dc.contributor.institutionSennaroǧlu, Alphan, Department of Physics, Koç Üniversitesi, Istanbul, Turkey
dc.date.accessioned2025-10-05T16:40:01Z
dc.date.issued2013
dc.description.abstractIn the design of mode-locked lasers, single-walled carbon nanotube saturable absorbers (SWCNT-SAs) have emerged as important alternatives to semiconductor saturable absorber mirrors (SESAMs) due to their favorable optical characteristics, low cost, and relatively simple fabrication scheme. Therefore, it is of great interest to explore the limits of energy scaling in solid-state lasers mode-locked with SWCNT-SAs. Due to their unique wavelength range for biomedical applications, a room-temperature Cr4+:forsterite laser operating near 1.3 μm was used in the mode-locking experiments. The laser was end-pumped with a continuous-wave Yb-fiber laser at 1064 nm. Furthermore, a q-preserving multipass-cavity (MPC) was added to the short resonator to lower the pulse repetition rate to 4.51 MHz and to scale up the output pulse energy at low average power. The SWCNT-SA was fabricated with SWCNTs grown by the highpressure CO conversion (HiPCO) technique. With dispersion compensation optics, the net group delay dispersion of the resonator was estimated to be around -4440 fs2. When mode-locked with the SWCNT-SA, the resonator produced 10-nJ, 121-fs pulses at 1247 nm with a spectral bandwidth of 16 nm, corresponding to a time-bandwidth product of 0.37. To our knowledge, this represents the highest peak power (84 kW) generated to date from a bulk femtosecond solid-state laser, mode-locked by using a SWCNT-SA. The results also suggest that the peak power achieved in our experiments was limited only by the self-focusing in the Cr4+:forsterite gain medium and further increase in output energy should in principle be possible in other gain media mode-locked with SWCNT-SAs. © 2013 Copyright SPIE. © 2013 Elsevier B.V., All rights reserved.
dc.description.sponsorshipThe Society of Photo-Optical Instrumentation Engineers (SPIE)
dc.identifier.conferenceNameSolid State Lasers XXII: Technology and Devices
dc.identifier.conferencePlaceSan Francisco, CA
dc.identifier.doi10.1117/12.2002944
dc.identifier.issn0277786X
dc.identifier.issn1996756X
dc.identifier.scopus2-s2.0-84878201669
dc.identifier.urihttps://doi.org/10.1117/12.2002944
dc.identifier.urihttps://hdl.handle.net/20.500.14719/13204
dc.identifier.volume8599
dc.language.isoen
dc.relation.oastatusAll Open Access
dc.relation.oastatusBronze Open Access
dc.relation.sourceProceedings of SPIE - The International Society for Optical Engineering
dc.subject.authorkeywordsCr4+:forsterite Laser
dc.subject.authorkeywordsEnergy Scaling
dc.subject.authorkeywordsMultipass-cavity (mpc)
dc.subject.authorkeywordsSingle Walled Carbon Nanotube Saturable Absorber (swcnt-sa)
dc.subject.authorkeywordsBiomedical Applications
dc.subject.authorkeywordsEnergy Scaling
dc.subject.authorkeywordsGroup Delay Dispersion
dc.subject.authorkeywordsMultipass-cavity (mpc)
dc.subject.authorkeywordsOptical Characteristics
dc.subject.authorkeywordsSingle-walled Carbon Nanotube Saturable Absorbers
dc.subject.authorkeywordsSwcnt-sa
dc.subject.authorkeywordsTime-bandwidth Products
dc.subject.authorkeywordsBandwidth
dc.subject.authorkeywordsExperiments
dc.subject.authorkeywordsFiber Lasers
dc.subject.authorkeywordsGroup Delay
dc.subject.authorkeywordsMedical Applications
dc.subject.authorkeywordsModel Predictive Control
dc.subject.authorkeywordsOlivine
dc.subject.authorkeywordsPumping (laser)
dc.subject.authorkeywordsResonators
dc.subject.authorkeywordsSemiconductor Quantum Wells
dc.subject.authorkeywordsSemiconductor Saturable Absorber Mirrors
dc.subject.authorkeywordsSingle-walled Carbon Nanotubes (swcn)
dc.subject.authorkeywordsMode-locked Fiber Lasers
dc.subject.indexkeywordsBiomedical applications
dc.subject.indexkeywordsEnergy scaling
dc.subject.indexkeywordsGroup delay dispersion
dc.subject.indexkeywordsmultipass-cavity (MPC)
dc.subject.indexkeywordsOptical characteristics
dc.subject.indexkeywordsSingle-walled carbon nanotube saturable absorbers
dc.subject.indexkeywordsSwcnt-sa
dc.subject.indexkeywordsTime-bandwidth products
dc.subject.indexkeywordsBandwidth
dc.subject.indexkeywordsExperiments
dc.subject.indexkeywordsFiber lasers
dc.subject.indexkeywordsGroup delay
dc.subject.indexkeywordsMedical applications
dc.subject.indexkeywordsModel predictive control
dc.subject.indexkeywordsOlivine
dc.subject.indexkeywordsPumping (laser)
dc.subject.indexkeywordsResonators
dc.subject.indexkeywordsSemiconductor quantum wells
dc.subject.indexkeywordsSemiconductor saturable absorber mirrors
dc.subject.indexkeywordsSingle-walled carbon nanotubes (SWCN)
dc.subject.indexkeywordsMode-locked fiber lasers
dc.titleEnergy scaling of a multipass-cavity mode-locked femtosecond bulk laser with a carbon nanotube saturable absorber
dc.typeConference Paper
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