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Viscous hydrodynamic model of non-linear plasma oscillations in two-dimensional gated conduction channels and application to the detection of terahertz signals

机译:在二维门控导通通道非线性等离子体振荡的粘性流体动力学模型和应用到检测太赫兹信号的

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We study the non-linear plasma oscillations in a semiconductor conduction channel controlled by a gate. The analysis is based on the hydrodynamic equations derived from the Boltzmann equation, and includes the effects of viscosity, finite mobility, and temperature gradients in the channel. The conduction channel of a heterostructure High Electron Mobility Transistor (HEMT) can act as a plasma wave resonator for charge density oscillations at frequencies significantly higher than the transistor cut-off frequency in a short channel device. In the Dyakonov-Shur detector a short channel HEMT is used for the resonant tunable detection of electromagnetic radiation in the low terahertz range. Within the hydrodynamic approximation we evaluated the resonant nonlinear response to a small signal, and obtained the temperature dependence of the quality factor Q of the plasma resonance. We find that in high mobility gated semiconductor conduction channels the quality of the resonance is limited by the temperature dependent viscosity of the electron fluid.
机译:我们研究了由栅极控制的半导体传导通道中的非线性等离子体振荡。该分析基于从Boltzmann方程得出的流体动力学方程,并包括通道中粘度,有限迁移率和温度梯度的影响。异质结构高电子迁移率晶体管(HEMT)的传导通道可以充当等离子波谐振器,用于在比短通道器件中的晶体管截止频率高得多的频率上产生电荷密度振荡。在Dyakonov-Shur检测器中,短通道HEMT用于低太赫兹范围内的电磁辐射的共振可调检测。在流体力学近似中,我们评估了对小信号的共振非线性响应,并获得了等离子体共振品质因数Q的温度依赖性。我们发现,在高迁移率的门控半导体传导通道中,共振的质量受到电子流体的温度依赖性粘度的限制。

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