TY - JOUR
T1 - Exact long-range Coulombic energy calculation for net charged systems neutralized by uniformly distributed background charge using fast multipole method and its application to efficient free energy calculation
AU - Urano, Ryo
AU - Shinoda, Wataru
AU - Yoshii, Noriyuki
AU - Okazaki, Susumu
N1 - Funding Information:
This work was done with the support of FLAGSHIP2020, MEXT within the Priority Issues 1 (Development of Next-Generation Drug Design Technology) and 5 (Development of New Fundamental Technologies for High-Efficiency Energy Creation, Conversion/Storage and Use) using computational resources of the K computer provided by the RIKEN Advanced Institute for Computational Science through the HPCI System Research project (Nos. hp150164, hp150269, and hp150275). Calculations were partly performed at the Information Technology Center of Nagoya University, at the Institute for Solid State Physics, University of Tokyo, and at the Research Center for Computational Science, Okazaki, Japan, and the Supercomputer Center. This work was also funded by the JSPS KAKENHI [Grant No. JP17K04758 (N.Y.)]. We thank Dr. Sakashita and Dr. Andoh for helping us with the implementation of our method in the MODYLAS program.
Publisher Copyright:
© 2020 Author(s).
PY - 2020/6/28
Y1 - 2020/6/28
N2 - In molecular dynamics (MD) calculations of the free energies of ions and ionic molecules, we often encounter net charged molecular systems where the electrical neutrality condition is broken. This charge causes a problem in the evaluation of long-range Coulombic interactions under periodic boundary conditions. A standard remedy for this problem is to consider a hypothetical homogeneous background charge density to neutralize the total system. Here, we present a new expression for the evaluation of Coulombic interactions for such systems including background charge using the fast multipole method (FMM). Furthermore, an efficient scheme is developed to evaluate solute-solvent interaction energies using the FMM, reducing the computational burden for the far-field part. We calculate the hydration free energies of Mg2+, Na+, and Cl- ions dissolved in a neutral solvent using the new expression. The calculated free energies show good agreement with the results obtained using the well-established particle mesh Ewald method. This demonstrates the validity of the proposed expression. This work should make a contribution to highly parallelized MD calculations for large-scale charged systems (particularly, those with over million particles).
AB - In molecular dynamics (MD) calculations of the free energies of ions and ionic molecules, we often encounter net charged molecular systems where the electrical neutrality condition is broken. This charge causes a problem in the evaluation of long-range Coulombic interactions under periodic boundary conditions. A standard remedy for this problem is to consider a hypothetical homogeneous background charge density to neutralize the total system. Here, we present a new expression for the evaluation of Coulombic interactions for such systems including background charge using the fast multipole method (FMM). Furthermore, an efficient scheme is developed to evaluate solute-solvent interaction energies using the FMM, reducing the computational burden for the far-field part. We calculate the hydration free energies of Mg2+, Na+, and Cl- ions dissolved in a neutral solvent using the new expression. The calculated free energies show good agreement with the results obtained using the well-established particle mesh Ewald method. This demonstrates the validity of the proposed expression. This work should make a contribution to highly parallelized MD calculations for large-scale charged systems (particularly, those with over million particles).
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U2 - 10.1063/5.0007957
DO - 10.1063/5.0007957
M3 - Article
C2 - 32610973
AN - SCOPUS:85087472228
SN - 0021-9606
VL - 152
JO - Journal of Chemical Physics
JF - Journal of Chemical Physics
IS - 24
M1 - 244115
ER -