论文标题

具有两个参数驱动的机械模式的光力学系统中的负腔光子光谱功能

Negative cavity photon spectral function in an optomechanical system with two parametrically-driven mechanical modes

论文作者

Motazedifard, Ali, Dalafi, A., Naderi, M. H.

论文摘要

我们提出了一种实验可行的光力方案,以实现负腔光子光谱功能(CPSF),该光谱功能(CPSF)等效于阴性吸收。所考虑的系统是一种光学机械系统,该系统由两个机械(语音)模式组成,它们通过辐射压力线性耦合到公共腔模式,而参数通过其弹簧系数的相干时间调节进行了参数驱动。使用腔的运动方程式延迟了在广义线性响应理论框架中获得的绿色功能,我们表明,在红色检测和弱偶联方案中,与负CPSF相对应的频率依赖性有效腔阻尼速率(ECDR)可以通过控制合作性和调制参数仍然存在于系统的过程中来实现。然而,在标准(未调制的裸露的)腔光系统中,这种充当光机电增益的消极性从未发生。此外,我们发现,与单个调制机械振荡器相比,与CPSF负相关的大小和带宽相比,存在两个调制机械自由度的存在在CPSF负面的大小和带宽上提供了更大的可控性。有趣的是,引入的负性可能会打开一个新平台,以实现非凡的(修改)的光机电诱导的透明度(在输出中放大输入信号),从而导致具有可切换带宽的完美可调式光学机械滤镜,该过滤器可以用作光学近距离。

We propose an experimentally feasible optomechanical scheme to realize a negative cavity photon spectral function (CPSF) which is equivalent to a negative absorption. The system under consideration is an optomechanical system consisting of two mechanical (phononic) modes which are linearly coupled to a common cavity mode via the radiation pressure while parametrically driven through the coherent time-modulation of their spring coefficients. Using the equations of motion for the cavity retarded Green's function obtained in the framework of the generalized linear response theory, we show that in the red-detuned and weak-coupling regimes a frequency-dependent effective cavity damping rate (ECDR) corresponding to a negative CPSF can be realized by controlling the cooperativities and modulation parameters while the system still remains in the stable regime. Nevertheless, such a negativity which acts as an optomechanical gain never occurs in a standard (an unmodulated bare) cavity optomechanical system. Besides, we find that the presence of two modulated mechanical degrees of freedom provides more controllability over the magnitude and bandwidth of the negativity of CPSF, in comparison to the setup with a single modulated mechanical oscillator. Interestingly, the introduced negativity may open a new platform to realize an extraordinary (modified) optomechanically induced transparency (in which the input signal is amplified in the output) leading to a perfect tunable optomechanical filter with switchable bandwidth which can be used as an optical transistor.

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