论文标题
使用低温低噪声放大器(晶体管非线性效应)的纠缠微波光子生成
Entangled Microwave Photons Generation using Cryogenic Low Noise Amplifier (Transistor Nonlinearity Effects)
论文作者
论文摘要
本文主要关注称为纠缠的量子领域中的重要现象之一。显然,由于某些不同的方法,由于非线性属性而产生的纠缠是由于非线性属性而产生的。相比之下,这项研究采用了一种独特的方法,在该方法中设计了低温低噪声放大器,并使用晶体管非线性效应(三阶非线性)纠缠了微波光子。据认为,低噪声放大器包含两个偶联的振荡器,它们与不同的频率共鸣。提到的振荡器通过栅极电源电容器相互耦合,非线性跨导率是强烈操纵纠缠的微波光子的重要因素。为了进行纠缠分析,最初得出了系统的哈密顿量,然后使用设计的放大器的运动动态方程式振荡器的光子数量以及相位敏感的互相关因子在傅立叶结构域中计算得出纠缠度量。作为一个主要结论,研究表明,使用晶体管的非线性设计的低噪声放大器具有在非常低的内在跨传导性下生成纠缠的微波光子的能力,而当噪声图被强降至最低时,则可以更重要的是。此外,设计和模拟了低温低噪声放大器,以验证可以实现超低噪声图,通过该图,可以增加纠缠微波光子的产生概率。
This article mainly focuses on one of the important phenomena in the quantum realm called entanglement. It is clear that entanglement created due to the nonlinearity property has been arisen by some different methods. This study in contrast uses a unique approach in which a cryogenic low noise amplifier is designed and using the transistor nonlinearity effect (third-order nonlinearity) entangled microwave photons are created. It is supposed that the low noise amplifier contains two coupled oscillators resonating with different frequencies. The mentioned oscillators are coupled to each other through the gate-drain capacitor and nonlinear transconductance as an important factor by which the entangled microwave photons are strongly manipulated. For entanglement analysis, the Hamiltonian of the system is initially derived, then using the dynamic equation of motion of the designed amplifier the oscillator's number of photons and also the phase sensitive cross-correlation factor are calculated in Fourier domain to calculate the entanglement metric. As a main conclusion, the study shows that the designed low noise amplifier using nonlinearity of the transistor has the ability to generate the entangled microwave photons at very low intrinsic transconductance and more importantly when the noise figure is strongly minimized. Additionally, a cryogenic low noise amplifier is designed and simulated to verify that it is possible to achieve an ultra-low noise figure by which the probability of the generation of the entangled microwave photons is increased.