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부분 전하의 의미와 정의

Meaning and Definition of Partial Charges

  • Cho, Seung Joo (Department of Cellular and Molecular Medicine & Center for Resitance Cells, College of Medicine, Chosun University)
  • 투고 : 2010.12.07
  • 심사 : 2010.12.23
  • 발행 : 2010.12.31

초록

Partial charge is an important and fundamental concept which can explain many aspects of chemistry. Since a molecule can be regarded as neclei surrounded by electron cloud, there is no way to define a partial charge accurately. Nevertheless, there have been many attempts to define these seemingly impossible parameters, since they would facilitate the understanding of molecular properties such as molecular dipole moment, solvation, hydrogen bonding, molecular spectroscopy, chemical reaction, etc. Common methods are based on the charge equalization, orbital occupancy, charge density, and electric multipole moments, and electrostatic potential fitting. Methods based on the charge equalization using electronegativity are very fast, and therefore they have been used to study many compounds. Methods to subdivide orbital occupancy using basis set conversion, relies on the notion that molecular orbitals are composed of atomic orbitals. The main idea is to reduce overlap integral between two nuclei using converted orthogonal basis sets. Using some quantum mechanical observables like electrostatic potential or charge multipole moments. Using potential grids obtained from wavefunction, partial charges can be fitted. these charges are most useful to describe intermolecular electrostatic interactions. Methods to using dipole moment and its derivatives, seems to be sensitive the level of theory, Dividing electron density using density gradient being the most rigorous theoretically among various schemes, bears best potential to describe the charge the most adequately in the future.

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참고문헌

  1. J. Gasteiger and M. Marsili, "A New Model for Calculating Atomic Charges in Molecules", Tetrahedron Lett., Vol. 27, p. 3181, 1978.
  2. R. S. Mulliken, "Electronic Population Analysis on LCAO-MO Molecular Wave Functions", J. Chem. Phys., Vol. 23, p. 1833, 1955. https://doi.org/10.1063/1.1740588
  3. L. C. Lowdin, "On the Orthogonality Problem", Adv, Quantum Chem., Vol. 5, p. 185, 1970. https://doi.org/10.1016/S0065-3276(08)60339-1
  4. L. C. Cusaches and P. Politzer, "On the Problem of Definding the Charge on an Atom in a Molecule", Chem. Phys. Lett., Vol. 1, p. 529, 1968. https://doi.org/10.1016/0009-2614(68)80010-7
  5. A. E. Reed, R. B. Weinstock, and F. Weinhold "Natural Population Analysis", J. Chem. Phys., Vol. 83, p. 735, 1985. https://doi.org/10.1063/1.449486
  6. G. R. Runtz, R. F. W. Bader, and R. R. Messer, "Definition of Bond Paths and Bond Directions in Terms of the Molecular Charge Distribution", Can. J. Chem., Vol. 55, p. 3040, 1977. https://doi.org/10.1139/v77-422
  7. J. Ciolowski, "A New Population Analysis Based on Atomic Polar Tensors", J. Am. Chem. Soc., Vol. 111, p. 1833, 1989.
  8. C. M. Breneman and K. B. Wiberg, "Determining atom-centered monopoles from molecular electrostatic potentials. The need for high sampling density in fromamide conformational analysis", J. Comput. Chem., Vol. 11, p. 361, 1990. https://doi.org/10.1002/jcc.540110311
  9. W. D. Cornell, P. Cieplak, C. I. Bayly, I. R. Gould, K. M. Merz, Jr., D. M. Ferguson, D. C. Spellmeyer, T. Fox, J. W. Caldwell, and P. A. Kollman. "A Second Generation Force Field for the Simulation of Proteins, Nucleic Acids, and Organic Molecules", J. Am. Chem. Soc., Vol. 117, p. 5179, 1995. https://doi.org/10.1021/ja00124a002
  10. A. Jakalian, D. B. Jack, and C. I. Bayly, "Fast, Efficient Generation of High Quality Atomic Charges, AM1-BCC Model: II. Parameterization and Validation", J. Comput. Chem., Vol. 23, p. 1623, 2002. https://doi.org/10.1002/jcc.10128