论文标题

单一和双Quity系统的Born-Markov主方程的有效性

Validity of Born-Markov master equations for single and two-qubit systems

论文作者

Vadimov, Vasilii, Tuorila, Jani, Orell, Tuure, Stockburger, Jürgen, Ala-Nissila, Tapio, Ankerhold, Joachim, Möttönen, Mikko

论文摘要

迫切需要使用可靠的模拟工具来匹配控制量身定制的量子设备所需的极高准确性,突显了了解开放量子系统及其建模的重要性。为此,我们在这里比较了常用的红场和Lindblad Master方程与数值确切的结果,在一个和两个共鸣量子盘中横向耦合到一个点与Drude-Cut Cut ohmic Bath。所有相关参数都在广泛的范围内变化,这使我们能够对弱耦合方法的有效性和物理上有意义的适用​​性进行详细的预测。我们通过比较其系统演化超级操作器的最大差异与数值确切的结果来表征近似方法的准确性。在优化了近似模型的参数以最大程度地减少差异之后,我们还探索了至少可以用作现象学模型的弱耦合方程以及在何种程度上。优化可能导致实验数据的准确再现,但是我们的结果对于估计提取的参数值(例如浴温温度)的可靠性很重要。我们的发现设定了通常的Born-Markov主方程有效性范围的一般指南,并表明它们无法准确描述出令人惊讶的广泛参数,尤其是在低温下的物理学。由于量子技术设备在那里运行,因此他们的准确建模呼吁仔细选择方法。

The urgent need for reliable simulation tools to match the extreme accuracy needed to control tailored quantum devices highlights the importance of understanding open quantum systems and their modeling. To this end, we compare here the commonly used Redfield and Lindblad master equations against numerically exact results in the case of one and two resonant qubits transversely coupled at a single point to a Drude-cut ohmic bath. All the relevant parameters are varied over a broad range which allows us to give detailed predictions about the validity and physically meaningful applicability of the weak-coupling approaches. We characterize the accuracy of the approximate approaches by comparing the maximum difference of their system evolution superoperators with numerically exact results. After optimizing the parameters of the approximate models to minimize the difference, we also explore if and to what extent the weak-coupling equations can be applied at least as phenomenological models. Optimization may lead to an accurate reproduction of experimental data, but yet our results are important to estimate the reliability of the extracted parameter values such as the bath temperature. Our findings set general guidelines for the range of validity of the usual Born-Markov master equations and indicate that they fail to accurately describe the physics in surprisingly broad range of parameters, in particular at low temperatures. Since quantum-technological devices operate there their accurate modeling calls for a careful choice of methods.

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