The authors provide OpenMP Fortran code that solves the rotating dipolar Gross-Pitaevskii equation in 2D and 3D using imaginary- and real-time propagation.
OpenMP GNU and Intel Fortran programs for solving the time-dependent Gross-Pitaevskii equation
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abstract
We present Open Multi-Processing (OpenMP) version of Fortran 90 programs for solving the Gross-Pitaevskii (GP) equation for a Bose-Einstein condensate in one, two, and three spatial dimensions, optimized for use with GNU and Intel compilers. We use the split-step Crank-Nicolson algorithm for imaginary- and real-time propagation, which enables efficient calculation of stationary and non-stationary solutions, respectively. The present OpenMP programs are designed for computers with multi-core processors and optimized for compiling with both commercially-licensed Intel Fortran and popular free open-source GNU Fortran compiler. The programs are easy to use and are elaborated with helpful comments for the users. All input parameters are listed at the beginning of each program. Different output files provide physical quantities such as energy, chemical potential, root-mean-square sizes, densities, etc. We also present speedup test results for new versions of the programs.
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cond-mat.quant-gas 1years
2026 1verdicts
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OpenMP Fortran programs for rotating dipolar Bose-Einstein condensates
The authors provide OpenMP Fortran code that solves the rotating dipolar Gross-Pitaevskii equation in 2D and 3D using imaginary- and real-time propagation.