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Published on: November 3, 2011
DL_MG: A Parallel Multigrid Poisson and Poisson-Boltzmann Solver for Electronic Structure Calculations in Vacuum and
James C Womack1, Lucian Anton2, Jacek Dziedzic1,3
1Department of Chemistry , University of Southampton , Highfield, Southampton SO17 1BJ , United Kingdom.
A new solver library, DL_MG, accurately solves complex Poisson equations for large-scale electronic structure calculations. It offers efficient performance on parallel computers, comparable to existing methods.
Area of Science:
- Computational Chemistry
- Materials Science
- Quantum Mechanics
Background:
- Solving the Poisson equation is essential for determining electrostatic potential in quantum mechanical Hamiltonian.
- Simulating complex electronic structures requires advanced numerical methods for the Poisson equation due to nonhomogeneous environments.
- Analytic solutions are insufficient for complex Poisson equation variants in modern simulations.
Purpose of the Study:
- To introduce DL_MG, a novel, flexible, scalable, and accurate solver library for the Poisson equation.
- To address the challenges of solving complex Poisson equations in large-scale electronic structure calculations on parallel systems.
- To enhance the accuracy and efficiency of electrostatic potential calculations in computational chemistry.
Main Methods:
- Developed DL_MG based on the multigrid approach.
- Implemented an iterative high-order defect correction method for enhanced solution accuracy.
- Tested DL_MG on model systems for generalized Poisson and Poisson-Boltzmann equations, and in large-scale electronic structure calculations using ONETEP.
Main Results:
- DL_MG demonstrated excellent agreement with analytic solutions for model systems.
- The solver exhibited efficient computational performance, scaling to approximately 10^9 unknowns on hundreds of CPU cores.
- DL_MG showed comparable execution times to conventional FFT-based solvers in large-scale protein-ligand complex simulations.
Conclusions:
- DL_MG is a highly accurate and efficient solver for complex Poisson equations in large-scale electronic structure calculations.
- The library provides a scalable solution for modern computational chemistry and materials science challenges.
- DL_MG integrates seamlessly with existing electronic structure packages, offering a viable alternative to traditional methods.
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