Efficient second harmonic generation in nanophotonic GaAs-on-insulator waveguides
Nonlinear frequency conversion plays a crucial role in advancing the functionality of next-
generation optical systems. Portable metrology references and quantum networks will …
generation optical systems. Portable metrology references and quantum networks will …
Unlocking spectral versatility from broadly− tunable quantum− dot lasers
SE White, MA Cataluna - Photonics, 2015 - mdpi.com
Wavelength− tunable semiconductor quantum− dot lasers have achieved impressive
performance in terms of high− power, broad tunability, low threshold current, as well as …
performance in terms of high− power, broad tunability, low threshold current, as well as …
Efficient yellow-green light generation at 561 nm by frequency-doubling of a QD-FBG laser diode in a PPLN waveguide
KA Fedorova, GS Sokolovskii, M Khomylev… - Optics Letters, 2014 - opg.optica.org
A compact high-power yellow–green continuous wave (CW) laser source based on second-
harmonic generation (SHG) in a 5% MgO doped periodically poled congruent lithium …
harmonic generation (SHG) in a 5% MgO doped periodically poled congruent lithium …
978 nm all-polarization-maintaining mode-locked fiber laser based on phase-biased nonlinear amplifying loop mirror
H Wang, Z Wang, W Jia, L Song, T Chen… - IEEE Journal of …, 2023 - ieeexplore.ieee.org
Terahertz (THz) wave generation based on ultrafast laser is one of the most predominant
and popular technologies. For THz generation by photoconductor antenna and optical …
and popular technologies. For THz generation by photoconductor antenna and optical …
Orange-to-red tunable picosecond pulses by frequency doubling in a diode-pumped PPKTP waveguide
KA Fedorova, GS Sokolovskii, DI Nikitichev, PR Battle… - Optics Letters, 2013 - opg.optica.org
A compact picosecond all-room-temperature orange-to-red tunable laser source in the
spectral region between 600 and 627 nm is demonstrated. The tunable radiation is obtained …
spectral region between 600 and 627 nm is demonstrated. The tunable radiation is obtained …
574–647 nm wavelength tuning by second-harmonic generation from diode-pumped PPKTP waveguides
KA Fedorova, GS Sokolovskii, PR Battle, DA Livshits… - Optics Letters, 2015 - opg.optica.org
We present a compact, all-room-temperature continuous-wave laser source in the visible
spectral region between 574 and 647 nm by frequency doubling of a broadly tunable …
spectral region between 574 and 647 nm by frequency doubling of a broadly tunable …
Broad wavelength tunability from external cavity quantum-dot mode-locked laser
DI Nikitichev, KA Fedorova, Y Ding, A Alhazime… - Applied Physics …, 2012 - pubs.aip.org
Broadband wavelength tunability over 136 nm (between 1182.5 nm and 1319 nm) of
picosecond pulses in passive mode-locked regime is demonstrated in a multi-section …
picosecond pulses in passive mode-locked regime is demonstrated in a multi-section …
Green second-harmonic generation in a periodically poled planar GaN waveguide
M Kolenda, D Kezys, T Grinys, A Vaitkevičus… - Optical and Quantum …, 2024 - Springer
We demonstrate a broadband second-harmonic generator for the green spectral range
based on a periodical polarity GaN waveguide structure. We grew the structure with a …
based on a periodical polarity GaN waveguide structure. We grew the structure with a …
Tunable single-and dual-wavelength SHG from diode-pumped PPKTP waveguides
KA Fedorova, CD Wong, CM Kaleva, IO Bakshaev… - Optics Letters, 2016 - opg.optica.org
A compact, all-room-temperature, widely tunable, continuous wave laser source in the green
spectral region (502.1–544.2 nm) with a maximum output power of 14.7 mW is …
spectral region (502.1–544.2 nm) with a maximum output power of 14.7 mW is …
Metamaterial for efficient second harmonic generation
GM Savchenko, VV Dudelev, KK Soboleva… - Technical Physics …, 2016 - Springer
Metamaterial for Efficient Second Harmonic Generation Page 1 1041 ISSN 1063-7850, Technical
Physics Letters, 2016, Vol. 42, No. 10, pp. 1041–1044. © Pleiades Publishing, Ltd., 2016 …
Physics Letters, 2016, Vol. 42, No. 10, pp. 1041–1044. © Pleiades Publishing, Ltd., 2016 …