Laser emission in a mesastructure with HgCdTe-based quantum wells with a periodic ridge system
Kiryanova E. N.
1,2, Rumyantsev V. V.
1,2, Razova A. A.
1,2, Shengurov D. V.
1, Gusev N. S.
1, Morozova E. E.
1, Utochkin V. V.
1, Baryshev V. R.
3, Yantser A. A.
1, Mazhukina K. A.
1, Fadeev M. A.
1, Ginzburg N. S.
3, Malkin A. M.
3, Egorova E. D.
3, Mikhailov N. N.
4, Dvoretsky S. A.
4, Gavrilenko V. I.
1,2, Morozov S. V.
1,21Institute for Physics of Microstructures, Russian Academy of Sciences, Nizhny Novgorod, Russia
2Lobachevsky State University, Nizhny Novgorod, Russia
3Federal Research Center A.V. Gaponov-Grekhov Institute of Applied Physics of the Russian Academy of Sciences, Nizhny Novgorod, Russia
4Rzhanov Institute of Semiconductor Physics, Siberian Branch, Russian Academy of Sciences, Novosibirsk, Russia
Email: rumyantsev@ipmras.ru, annara@ipmras.ru, shen@ipmras.ru, gusevns@ipmras.ru, elenamor@ipmras.ru, utvlvas@ipmras.ru, Baryshev@ipfran.ru, yantser@ipmras.ru, mazhukina@ipmras.ru, fadeev@ipmras.ru, mikhailov@isp.nsc.ru, dvor@isp.nsc.ru, gavr@ipmras.ru, more@ipmras.ru
In a waveguide structure with HgCdTe quantum wells single-frequency laser emission at a wavelength of 13.5 μm is demonstrate due to the formation of a periodic system of ridges on the surface of the structure, implementing distributed feedback. It is shown that the ion etching technology used does not lead to an increase in the threshold intensity of optical pumping, which does not exceed 100 W/cm2 at T<20 K. Keywords: HgCdTe, mesastructures, distributed feedback, single-frequency laser.
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