论文标题

QUTIP-BOFIN:一种纤维化和费米的数值层次层次库,并在轻度收获,量子控制和单分子电子中应用

QuTiP-BoFiN: A bosonic and fermionic numerical hierarchical-equations-of-motion library with applications in light-harvesting, quantum control, and single-molecule electronics

论文作者

Lambert, Neill, Raheja, Tarun, Cross, Simon, Menczel, Paul, Ahmed, Shahnawaz, Pitchford, Alexander, Burgarth, Daniel, Nori, Franco

论文摘要

“运动的层次方程”(HEOM)方法是一种强大的精确数值方法,可以解决动力学并找到与非马克维亚和非扰动环境相连的量子系统的稳态。它最初是在物理化学的背景下开发的,它也已扩展并应用于固态物理,光学,单分子电子和生物物理学的问题。在这里,我们在Python中介绍了一个数值库,该库与功能强大的Qutip平台集成在一起,该平台实现了HEOM的Bosonic和Fermionic环境。我们通过一系列示例演示了它的实用性。对于玻感案例,我们包括拟合任意光谱密度的演示,以及Fenna-Matthews-Olson光合络合物中能量转移动力学的一个例子,显示合适的非马克维亚环境如何保护纯粹的dephasing。我们还展示了HEOM如何用于基准与环境的动力解耦的不同策略,并表明当环境光谱密度非常广泛时,Uhrig脉冲间距方案不如均等脉冲的最佳选择。对于Fermionic情况,我们提出了一个可集成的单突发性示例,用作代码的基准,以及一个更复杂的杂质示例与单个振动模式强烈耦合,并应用于单分子电子产品。

The "hierarchical equations of motion" (HEOM) method is a powerful exact numerical approach to solve the dynamics and find the steady-state of a quantum system coupled to a non-Markovian and non-perturbative environment. Originally developed in the context of physical chemistry, it has also been extended and applied to problems in solid-state physics, optics, single-molecule electronics, and biological physics. Here we present a numerical library in Python, integrated with the powerful QuTiP platform, which implements the HEOM for both bosonic and fermionic environments. We demonstrate its utility with a series of examples. For the bosonic case, we include demonstrations of fitting arbitrary spectral densities, and an example of the dynamics of energy transfer in the Fenna-Matthews-Olson photosynthetic complex, showing how a suitable non-Markovian environment can protect against pure dephasing. We also demonstrate how the HEOM can be used to benchmark different strategies for dynamical decoupling of a spin from its environment, and show that the Uhrig pulse-spacing scheme is less optimal than equally spaced pulses when the environment's spectral density is very broad. For the fermionic case, we present an integrable single-impurity example, used as a benchmark of the code, and a more complex example of an impurity strongly coupled to a single vibronic mode, with applications to single-molecule electronics.

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