论文标题
分子动力学和控制的数字量子模拟
Digital quantum simulation of molecular dynamics and control
论文作者
论文摘要
最佳形状的电磁场具有连贯控制量子系统动力学的能力,因此为控制与化学,生物和材料应用相关的分子转化提供了有希望的方法。当前,该领域的进步受到探索分子控制原理和可能性所需的量子动力学模拟的过失成本的阻碍。然而,新生量子计算设备的出现表明,量子动力学的有效模拟可能正在范围内。在本文中,我们研究了如何使用量子计算机设计最佳形状的场来控制分子系统。我们引入了一种混合算法,该算法利用量子计算机在多项式时间内模拟分子系统的场诱导的量子动力学,并结合经典优化方法来更新场地。描述了与分子控制问题相关的量子编码方法,并讨论了模拟量子动力学和获得仿真结果的程序。然后提出了明确处理范式振动和旋转控制问题的数值插图,并考虑如何使用最佳形状的场来阐明轻度收获复合物中能量转移的机制。资源估计以及对硬件噪声影响和近期硬件实现的前景的数值评估,都用于后一个任务。
Optimally-shaped electromagnetic fields have the capacity to coherently control the dynamics of quantum systems and thus offer a promising means for controlling molecular transformations relevant to chemical, biological, and materials applications. Currently, advances in this area are hindered by the prohibitive cost of the quantum dynamics simulations needed to explore the principles and possibilities of molecular control. However, the emergence of nascent quantum-computing devices suggests that efficient simulations of quantum dynamics may be on the horizon. In this article, we study how quantum computers could be employed to design optimally-shaped fields to control molecular systems. We introduce a hybrid algorithm that utilizes a quantum computer for simulating the field-induced quantum dynamics of a molecular system in polynomial time, in combination with a classical optimization approach for updating the field. Qubit encoding methods relevant for molecular control problems are described, and procedures for simulating the quantum dynamics and obtaining the simulation results are discussed. Numerical illustrations are then presented that explicitly treat paradigmatic vibrational and rotational control problems, and also consider how optimally-shaped fields could be used to elucidate the mechanisms of energy transfer in light-harvesting complexes. Resource estimates, as well as a numerical assessment of the impact of hardware noise and the prospects of near-term hardware implementations, are provided for the latter task.