论文标题
1-dSchrödinger方程的连贯的双向虚拟检测器
A Coherent Bi-Directional Virtual Detector for the 1-D Schrödinger Equation
论文作者
论文摘要
虚拟检测器是一种通常使用的技术来测量模拟中波函数的性质。一种类型的虚拟检测器测量概率密度和电流,在设定的位置会随着时间的推移,允许在边界处进行瞬时测量动量。这可以用作量子和经典模拟之间的边界条件。但是,作为测量光谱的工具,它具有源于其不连贯性的几个问题。虚拟检测器的另一种形式测量波函数随着时间的推移在实际空间中的设定位置的复杂值,傅立叶分析它以产生能量谱。确切地说,它产生的光谱是在一个方向上通过检测器传播的波函数。否则,它将产生一个频谱,其中包括向前和向后传播波袋之间的干扰。在这里,我们提出了一个虚拟检测器,该检测器维持该相干虚拟检测器的所有好处,同时还可以通过使用第二个测量点来解决传播方向并减轻非物理干扰。我们表明,在连续限制下,该双向虚拟检测器可以假设具有全球恒定潜力的等效波函数。因此,它等效于确切的光谱。
The virtual detector is a commonly utilized technique to measure the properties of a wavefunction in simulation. One type of virtual detector measures the probability density and current at a set position over time, permitting an instantaneous measurement of momentum at a boundary. This may be used as the boundary condition between a quantum and a classical simulation. However, as a tool for measuring spectra, it possesses several problems stemming from its incoherent nature. Another form of virtual detector measures the wavefunction's complex value at a set position in real space over time and Fourier analyzes it to produce an energy spectrum. The spectra it produces are exact provided that the wavefunction propagated through the detector in one direction. Otherwise it will produce a spectrum that includes interference between forward and backward propagating wavepackets. Here we propose a virtual detector which maintains all the benefits of this coherent virtual detector while also being able to resolve the direction of propagation and mitigate nonphysical interference by use of a second measurement point. We show that, in the continuum limit, this bi-directional virtual detector can reproduce an equivalent wavefunction assuming a globally constant potential. It is therefore equivalent to the exact spectrum.