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首页> 外文期刊>The Journal of Chemical Physics >Bohmian mechanics with complex action:A new trajectory-based formulation of quantum mechanics
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Bohmian mechanics with complex action:A new trajectory-based formulation of quantum mechanics

机译:具有复杂作用的波姆力学:一种基于轨迹的量子力学新公式

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摘要

In recent years there has been a resurgence of interest in Bohmian mechanics as a numerical tool because of its local dynamics,which suggest the possibility of significant computational advantages for the simulation of large quantum systems.However,closer inspection of the Bohmian formulation reveals that the nonlocality of quantum mechanics has not disappeared-it has simply been swept under the rag into the quantum force.In this paper we present a new formulation of Bohmian mechanics in which the quantum action,S,is taken to be complex.This leads to a single equation for complex S,and ultimately complex x and p but there is a reward for this complexification-a significantly higher degree of localization.The quantum force in the new approach vanishes for Gaussian wave packet dynamics,and its effect on barrier tunneling processes is orders of magnitude lower than that of the classical force.In fact,the current method is shown to be a rigorous extension of generalized Gaussian wave packet dynamics to give exact quantum mechanics.We demonstrate tunneling probabilities that are in virtually perfect agreement with the exact quantum mechanics down to 10~(-7) calculated from strictly localized quantum trajectories that do not communicate with their neighbors.The new formulation may have significant implications for fundamental quantum mechanics,ranging from the interpretation of non-locality to measures of quantum complexity.
机译:近年来,由于它的局部动力学,人们开始对作为数值工具的鲍姆力学重新产生兴趣,这表明了对大型量子系统进行仿真的重要计算优势。但是,对鲍姆公式的仔细检查表明,量子力学的非局域性并没有消失,它只是被抹布在量子力的作用之下。在本文中,我们提出了一种新的玻姆力学的公式,其中量子作用S被认为是复杂的。复数S的单个方程式,最终复数x和p的单方程式,但这种复杂化是有回报的-更高程度的局部化。新方法中的量子力对于高斯波包动力学消失了,它对势垒隧穿过程的影响是实际上,当前方法被证明是广义高斯波包的严格扩展。我们证明了隧穿概率与精确的量子力学几乎完全吻合,精确的量子力学从严格的局部量子轨迹计算得出,精确到10〜(-7),这些量子轨迹不与它们的邻居进行通讯。从非局限性的解释到量子复杂性的度量,对基本量子力学具有重要意义。

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