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Resonant-tunnelling diodes beyond quasi-bound-state lifetime limit

机译:谐振管二极管超过准结合状态寿命极限

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Resonant-tunnelling diodes (RTDs) are used for studies of fundamental aspects of tunnelling and also for realization of oscillators at high frequencies, particularly in THz frequency range. Also, the RTDs can be considered as the building blocks of different electronic structures, including optical, e.g., quantum-cascade lasers. It is generally accepted that the inherent limitation of the operating frequency and the charge relaxation (response) time of RTD is determined by the quasi-bound-state lifetime. The simple picture is not generally correct. Here we show, first, that the Coulomb interaction between electrons can lead to large reduction/increase of the relaxation time. Second, we demonstrate that the operating frequencies of RTDs are limited neither by quasi-bound-state lifetime, nor by relaxation-time constants; particularly the differential conductance of RTDs can stay negative at the frequencies far beyond the limits imposed by the time constants. Here we provide the experimental evidences for both effects. We demonstrate negative differential conductance up to the frequency of 12 GHz in our RTDs with the inverse quasi-bound-state lifetime of around 1 GHz. Also the relaxation time in our RTDs was shown to be a factor of 2 shorter/longer (depending on the RTD operating point) than the quasi-bound-state lifetime. According to our theory, the effects are not limited to the low frequencies and the same effects should persist at higher frequencies also. Our results indicate not only that nowadays operating frequencies of RTDs could be increased, but the results also elucidate the fundamental limitations of the whole class of resonant-tunnelling structures: single-electron-transistor-like structures, multi-barrier structures, quantum-cascade lasers, etc.
机译:谐振隧道二极管(RTD)用于研究隧道的基本方面,也用于实现高频振荡器,特别是在THz频率范围内。而且,RTD可以被认为是不同电子结构的组成部分,包括光学的,例如量子级联激光器。通常认为,RTD的工作频率和电荷弛豫(响应)时间的固有限制是由准结合态寿命决定的。简单的图片通常是不正确的。在这里,我们首先表明,电子之间的库仑相互作用会导致弛豫时间大大减少/增加。其次,我们证明了RTD的工作频率既不受准绑定状态寿命的限制,也不受松弛时间常数的限制。特别是RTD的差分电导在远远超出时间常数所施加的频率的频率下可以保持负值。在这里,我们提供了两种效果的实验证据。我们在RTD中展示了高达12 GHz频率的负微分电导,其准绑定状态的反向寿命为1 GHz左右。此外,我们的RTD的弛豫时间也显示为比准绑定状态寿命短2 /长(取决于RTD工作点)的2倍。根据我们的理论,这些影响不仅限于低频,相同的影响也应在较高频率下持续存在。我们的结果表明,不仅当今RTD的工作频率可以提高,而且结果还阐明了整个谐振隧道结构的基本局限性:单电子晶体管状结构,多势垒结构,量子级联激光等

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