Research output: Contribution to journal › Article › peer-review
Raman Lasing and Transverse Mode Selection in a Multimode Graded-Index Fiber with a Thin-Film Mirror on Its End Face. / Kuznetsov, Alexey G.; Terentyev, Vadim S.; Simonov, Victor A. et al.
In: Micromachines, Vol. 15, No. 8, 940, 24.07.2024.Research output: Contribution to journal › Article › peer-review
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TY - JOUR
T1 - Raman Lasing and Transverse Mode Selection in a Multimode Graded-Index Fiber with a Thin-Film Mirror on Its End Face
AU - Kuznetsov, Alexey G.
AU - Terentyev, Vadim S.
AU - Simonov, Victor A.
AU - Rizk, Hiba A.
AU - Nemov, Ilya N.
AU - Bronnikov, Kirill A.
AU - Dostovalov, Alexander V.
AU - Babin, Sergey A.
N1 - This research was funded by Russian Science Foundation, grant number 21-72-30024.
PY - 2024/7/24
Y1 - 2024/7/24
N2 - Multimode fibers are attractive for high-power lasers if transverse modes are efficiently controlled. Here, a dielectric thin-film mirror (R~20%) is micro-fabricated on the central area of the end face of a 1 km multimode 100/140 µm graded-index fiber and tested as the output mirror of a Raman laser with highly multimode (M2~34) 940 nm diode pumping. In the cavity with highly reflective input FBG, Raman lasing of the Stokes wave at 976 nm starts at the threshold pump power of ~80 W. Mode-selective properties of mirrors with various diameters were tested experimentally and compared with calculations in COMSOL, with the optimum diameter found to be around 12 µm. The measured Raman laser output beam at 976 nm has a quality factor of M2~2 near the threshold, which confirms a rather good selection of the fundamental transverse mode. The power scaling capabilities, together with a more detailed characterization of the output beam’s spatial profile, spectrum, and their stability, are performed. An approximately 35 W output power with an approximately 60% slope efficiency and a narrow spectrum has been demonstrated at the expense of a slight worsening of beam quality to M2~3 without any sign of mirror degradation at the achieved intensity of >30 MW/cm2. Further power scaling of such lasers as well as the application of the proposed technique in high-power fiber lasers are discussed.
AB - Multimode fibers are attractive for high-power lasers if transverse modes are efficiently controlled. Here, a dielectric thin-film mirror (R~20%) is micro-fabricated on the central area of the end face of a 1 km multimode 100/140 µm graded-index fiber and tested as the output mirror of a Raman laser with highly multimode (M2~34) 940 nm diode pumping. In the cavity with highly reflective input FBG, Raman lasing of the Stokes wave at 976 nm starts at the threshold pump power of ~80 W. Mode-selective properties of mirrors with various diameters were tested experimentally and compared with calculations in COMSOL, with the optimum diameter found to be around 12 µm. The measured Raman laser output beam at 976 nm has a quality factor of M2~2 near the threshold, which confirms a rather good selection of the fundamental transverse mode. The power scaling capabilities, together with a more detailed characterization of the output beam’s spatial profile, spectrum, and their stability, are performed. An approximately 35 W output power with an approximately 60% slope efficiency and a narrow spectrum has been demonstrated at the expense of a slight worsening of beam quality to M2~3 without any sign of mirror degradation at the achieved intensity of >30 MW/cm2. Further power scaling of such lasers as well as the application of the proposed technique in high-power fiber lasers are discussed.
KW - Raman laser
KW - diode pumped
KW - fiber laser
KW - graded-index fiber
KW - mode selection
KW - multimode
KW - thin-film mirror
UR - https://www.scopus.com/record/display.uri?eid=2-s2.0-85202348085&origin=inward&txGid=514ef49dc1764bdcc1a15a2669d110b1
UR - https://www.mendeley.com/catalogue/f2b52d5b-4c7e-3fe7-b4d0-ba9d35af24fe/
U2 - 10.3390/mi15080940
DO - 10.3390/mi15080940
M3 - Article
C2 - 39203591
VL - 15
JO - Micromachines
JF - Micromachines
SN - 2072-666X
IS - 8
M1 - 940
ER -
ID: 60829384