Čižas Vladislovas, Alexeeva Natalia, Alekseev Kirill N, Valušis Gintaras
Department of Optoelectronics, Center for Physical Sciences and Technology (FTMC), Saulėtekio Ave. 3, LT-10257 Vilnius, Lithuania.
Institute of Photonics and Nanotechnology, Department of Physics, Vilnius University, Saulėtekio Ave. 3, LT-10257 Vilnius, Lithuania.
Nanomaterials (Basel). 2023 Jul 1;13(13):1993. doi: 10.3390/nano13131993.
The detailed theoretical study of high-frequency signal gain, when a probe microwave signal is comparable to the AC pump electric field in a semiconductor superlattice, is presented. We identified conditions under which a doped superlattice biased by both DC and AC fields can generate or amplify high-frequency radiation composed of harmonics, half-harmonics, and fractional harmonics. Physical mechanisms behind the effects are discussed. It is revealed that in a general case, the amplification mechanism in superlattices is determined by the coexistence of both the phase-independent Bloch and phase-dependent parametric gain mechanisms. The interplay and contribution of these gain mechanisms can be adjusted by the sweeping AC pump strength and leveraging a proper phase between the pump and strong probe electric fields. Notably, a transition from the Bloch gain to the parametric gain, often naturally occurring as the amplitude of the amplified signal field grows, can facilitate an effective method of fractional harmonic generation in DC-AC-driven superlattices. The study also uncovers that the pure parametric generation of the fractional harmonics can be initiated via their ignition by switching the DC pump electric field. The findings open a promising avenue for the advancement of new miniature GHz-THz frequency generators, amplifiers, and dividers operating at room temperature.
本文给出了在半导体超晶格中,当探测微波信号与交流泵浦电场可比时高频信号增益的详细理论研究。我们确定了在直流和交流场偏置下的掺杂超晶格能够产生或放大由谐波、半谐波和分数谐波组成的高频辐射的条件。讨论了这些效应背后的物理机制。结果表明,在一般情况下,超晶格中的放大机制由与相位无关的布洛赫增益机制和与相位有关的参量增益机制共同决定。这些增益机制之间的相互作用和贡献可以通过扫描交流泵浦强度以及利用泵浦电场和强探测电场之间的适当相位来调节。值得注意的是,随着放大信号场振幅的增加,通常自然发生的从布洛赫增益到参量增益的转变,能够为直流 - 交流驱动的超晶格中分数谐波的产生提供一种有效的方法。该研究还发现,通过切换直流泵浦电场来激发分数谐波,可以启动分数谐波的纯参量产生。这些发现为开发在室温下工作的新型微型吉赫兹 - 太赫兹频率发生器、放大器和分频器开辟了一条有前景的途径。