Discrete transparent boundary conditions for the schrödinger equation on circular domains

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Abstract

We propose transparent boundary conditions (TBCs) for the time-dependent Schrödinger equation on a circular computational domain. First we derive the two-dimensional discrete TBCs in conjunction with a conservative Crank-Nicolson finite difference scheme. The presented discrete initial boundary-value problem is unconditionally stable and completely reflection- free at the boundary. Then, since the discrete TBCs for the Schr̈odinger equation with a spatially dependent potential include a convolution with respect to time with a weakly decaying kernel, we construct approximate discrete TBCs with a kernel having the form of a finite sum of exponentials, which can be efficiently evaluated by recursion. In numerical tests we finally illustrate the accuracy, stability, and efficiency of the proposed method. As a by-product we also present a new formulation of discrete TBCs for the 1D Schrödinger equation, with convolution coefficients that have better decay properties than those from the literature. © 2012 International Press.

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Arnold, A., Ehrhardt, M., Schulte, M., & Sofronov, I. (2012). Discrete transparent boundary conditions for the schrödinger equation on circular domains. Communications in Mathematical Sciences, 10(3), 889–916. https://doi.org/10.4310/CMS.2012.v10.n3.a9

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