存在恒定电场时被限制在圆内的二维谐振子:一种信息方法

IF 1.5 4区 物理与天体物理 Q3 OPTICS The European Physical Journal D Pub Date : 2024-06-07 DOI:10.1140/epjd/s10053-024-00861-3
Elizabeth Cruz, N. Aquino, V. Prasad, A. Flores-Riveros
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引用次数: 0

摘要

在这项工作中,我们研究了一个电子在恒定电场作用下,在半径为\(r_0\)的圆内受到谐振子势的约束。我们得到了三种不同约束半径的能量和特征函数与电场强度的函数关系。我们使用线性变分法,将试验函数构建为二维约束谐振子波函数的线性组合。我们计算了径向标准偏差,以此衡量概率密度的分散性。我们还计算了构型空间和动量空间中的香农熵和费雪信息,作为三种不同约束半径的定位-非定位度量,以及电场强度的函数。我们发现,在确定电子位置方面,香农熵和费雪信息比方差更可靠。香农熵和费雪信息曲线的表现取决于所研究的每种特定状态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A two-dimensional harmonic oscillator confined in a circle in the presence of a constant electric field: an informational approach

In this work, we study an electron subjected to a harmonic oscillator potential confined in a circle of radius \(r_0\) and in the presence of a constant electric field. We obtain energies and eigenfunctions for three different confinement radii as a function of the electric field strength. We have used the linear variational method by constructing the trial function as a linear combination of two-dimensional confined harmonic oscillator wave functions. We calculate the radial standard deviation as a measure of the dispersion of the probability density. We also computed the Shannon entropy and Fisher information, in configuration and momentum spaces, as localization-delocalization measures for three different confinement radii and as a function of the electric field strength. We find that Shannon entropy and Fisher information are more reliable than variance in determining electron location. The behaviour of Shannon entropy and Fisher information curves is shown to depend on each specific state under study.

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来源期刊
The European Physical Journal D
The European Physical Journal D 物理-物理:原子、分子和化学物理
CiteScore
3.10
自引率
11.10%
发文量
213
审稿时长
3 months
期刊介绍: The European Physical Journal D (EPJ D) presents new and original research results in: Atomic Physics; Molecular Physics and Chemical Physics; Atomic and Molecular Collisions; Clusters and Nanostructures; Plasma Physics; Laser Cooling and Quantum Gas; Nonlinear Dynamics; Optical Physics; Quantum Optics and Quantum Information; Ultraintense and Ultrashort Laser Fields. The range of topics covered in these areas is extensive, from Molecular Interaction and Reactivity to Spectroscopy and Thermodynamics of Clusters, from Atomic Optics to Bose-Einstein Condensation to Femtochemistry.
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