论文标题

改性半导体超级晶格中的超cha,间歇性,噪声和无序

Hyperchaos, intermittency, noise and disorder in modified semiconductor superlattices

论文作者

Bonilla, Luis L., Carretero, Manuel, Mompó, Emanuel

论文摘要

直流电压偏置下的弱耦合半导体超级晶格是具有多个自由度的非线性系统,其非线性是由于电子的顺序隧穿而引起的。它们可能在室温下表现出自发的混乱,并作为快速物理随机数发生器设备的作用。在这里,我们提出了一个通用的顺序传输模型,该模型在量子井处具有不同的电压下降,并包括由于超晶格外延生长而引起的噪声和波动。在具有相同周期的超晶格中,电流的兴奋性和振荡是由于电荷偶极波在发射极接触处形成的电荷偶极波的运动引起的,当电流降至临界值以下时。插入更宽的井可以通过在修改后的井处和更复杂的动力学下的波核来增加超晶格的兴奋性。然后,在扩展的直流电压范围内,可能会有超cha和不同类型的间歇性混乱。固有的镜头和热噪声和外部噪声会对混沌吸引子产生较小的影响。但是,由于生长波动引起的随机疾病可能会抑制任何规则或混乱的电流振荡。数值模拟表明,当由于外延生长而引起的波动的标准偏差低于0.024 nm(单个单层的10 \%)时,超过70%的样品仍然混乱,而0.015 nm疾病抑制了混乱。

Weakly coupled semiconductor superlattices under dc voltage bias are nonlinear systems with many degrees of freedom whose nonlinearity is due to sequential tunneling of electrons. They may exhibit spontaneous chaos at room temperature and act as fast physical random number generator devices. Here we present a general sequential transport model with different voltage drops at quantum wells and barriers that includes noise and fluctuations due to the superlattice epitaxial growth. Excitability and oscillations of the current in superlattices with identical periods are due to nucleation and motion of charge dipole waves that form at the emitter contact when the current drops below a critical value. Insertion of wider wells increases superlattice excitability by allowing wave nucleation at the modified wells and more complex dynamics. Then hyperchaos and different types of intermittent chaos are possible on extended dc voltage ranges. Intrinsic shot and thermal noises and external noises produce minor effects on chaotic attractors. However, random disorder due to growth fluctuations may suppress any regular or chaotic current oscillations. Numerical simulations show that more than 70\% of samples remain chaotic when the standard deviation of their fluctuations due to epitaxial growth is below 0.024 nm (10\% of a single monolayer) whereas for 0.015 nm disorder suppresses chaos.

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