Journal of Chemical Physics
The Journal of Chemical Physics
Search:
   
 
 
 
Previous Article
Many-body symmetry-adapted perturbation theory of intermolecular interactions. H2O and HF dimers
A many-body version of the symmetry-adapted perturbation theory is developed for a direct calculation of intermolecular potentials as a sum of the electrostatic, exchange, induction, and dispersion co...
Next Article
Constrained Newton approach adequate to direct self-consistent field calculations in closed- and open-shell configurations
The quadratically convergent approach to solve self-consistent field (SCF) solutions for closed- and open-shell configurations is derived from the Lagrange–Newton method with constraints of the ...

Ab initio theoretical study of small GaAs clusters

J. Chem. Phys. 95, 6602 (1991); doi:10.1063/1.461529

Issue Date: 1 November 1991

You are not logged in to this journal. Log in

Richard M. Graves and Gustavo E. Scuseria
Department of Chemistry and Rice Quantum Institute, Rice University, Houston, Texas 77251-1892
Theoretical calculations for the closed-shell ground state of small GaxAsy clusters (x=y; x=2–4) are carried out at the self-consistent field (SCF) Hartree–Fock level of theory, using analytic energy gradients for rapid geometry optimization. In addition, for Ga2As2, the SCF results are compared with theoretical predictions obtained at the coupled cluster level of theory including all single, double and perturbative triple excitations, CCSD(T). The equilibrium structures for Ga2As2, Ga3As3, and Ga4As4 are found to be of D2h, C1, and Ci symmetry, respectively. The cluster binding energies with respect to GaAs dimers (3Sigma) and Ga(2P)+As(4S) atoms are also obtained. The Journal of Chemical Physics is copyrighted by The American Institute of Physics.
History: Received 28 May 1991; accepted 15 July 1991
Permalink: http://link.aip.org/link/?JCPSA6/95/6602/1
BUY THIS ARTICLE   (US$24)
Download PDF (493 kB) View Cart

KEYWORDS and PACS

Keywords
PACS
  • 31.20.Di
    Electronic structure of atoms and molecules: theory Specific calculations and results Complete ab initio calculations (exact or nearly exact calculations on small species)
  • 36.40.+d
    Studies of special atoms and molecules Atomic and molecular clusters
  • YEAR: 1990-91

RELATED DATABASES


To view database links for this article,
you need to log in.
To view database links for this article,
you need to log in.

PUBLICATION DATA

ISSN:
0021-9606 (print)   1089-7690 (online)
Publisher:
AIP is a member of CrossRef AIP

REFERENCES (33)

For access to fully linked references, you need to log in. For access to fully linked references, you need to Log in.
  1. S. C. O'Brien, Y. Liu, Q. Zhang, J. R. Heath, F. K. Tittel, R. F. Curl, and R. E. Smalley, J. Chem. Phys. 84, 4074 (1986).
  2. G. W. Lemire, G. A. Bishea, S. A. Heidecke, and M. D. Morse, J. Chem. Phys. 92, 1 (1990).
  3. G. E. Scuseria, Theor. Chim. Acta (in press).
  4. K. Balasubramanian, J. Chem. Phys. 86, 3410 (1987).
  5. K. Balasubramanian, J. Chem. Phys. 92, 2123E (1990).
  6. K. Balasubramanian, J. Mol. Spectrosc. 139, 405 (1990).
  7. U. Meier, S. D. Peyerimhoff, P. J. Bruna, and F. Grein, J. Mol. Spectrosc. 134, 259 (1989).
  8. G. E. Scuseria, J. Chem. Phys. 92, 6722 (1990).
  9. K. Balasubramanian, J. Mol. Spectrosc. 121, 465 (1987).
  10. K. Balasubramanian, J. Phys. Chem. 90, 6786 (1986).
  11. K. Balasubramanian, J. Phys. Chem. 94, 7764 (1990).
  12. K. Balasubramanian, Chem. Phys. Lett. 171, 1 (1990).
  13. L. Lou, L. Wang, L. P. F. Chibante, R. T. Laaksonen, P. Nordlander, and R. E. Smalley, J. Chem. Phys. 94, 8015 (1991).
  14. P. Hohenberg and W. Kohn, Phys. Rev. B 136, 864 (1964).
  15. W. Kohn and L. J. Sham, Phys. Rev. A 140, 1133 (1965).
  16. F. Coester, Nucl. Phys. 1, 421 (1958).
  17. F. Coester and H. Kümmel, Nucl. Phys. 17, 477 (1960).
  18. J. Cizek, J. Chem. Phys. 45, 4256 (1966).
  19. J. Cizek, Adv. Chem. Phys. 14, 35 (1969).
  20. J. Paldus and J. Cizek, J. Chem. Phys. 60, 149 (1974).
  21. G. D. Purvis and R. J. Bartlett, J. Chem. Phys. 76, 1910 (1982).
  22. K. Raghavachari, G. W. Trucks, J. A. Pople, and M. Head-Gordon, Chem. Phys. Lett. 157, 479 (1989).
  23. J. Almlöf, K. Faegri, Jr., and K. Korsell, J. Comp. Chem. 3, 2469 (1986).
  24. M. Hüaser and R. Ahlrichs, J. Comp. Chem. 10, 104 (1989).
  25. T. H. Dunning, J. Chem. Phys. 53, 2823 (1970).
  26. G. E. Scuseria, C. L. Janssen, and H. F. Schaefer III, J. Chem. Phys. 89, 7382 (1988).
  27. M. Urban, J. Noga, S. J. Cole, and R. J. Bartlett, J. Chem. Phys. 83, 4041 (1985).
  28. R. J. Bartlett, J. D. Watts, S. A. Kucharski, and J. Noga, Chem. Phys. Lett. 165, 513 (1990).
  29. G. E. Scuseria, Chem. Phys. Lett. 176, 27 (1991).
  30. R. Ahlrichs, M. Bär, M. Häser, H. Horn, and C. Kölmel, Chem. Phys. Lett. 162, 165 (1989).
  31. S. F. Boys and F. Bernardi, Mol. Phys. 19, 553 (1970).
  32. T. J. Lee and P. R. Taylor, Int. J. Quantum Chem. Symp. 23, 199 (1989).
  33. K. Raghavachari and C. M. Rohlfing, J. Chem. Phys. 89, 2219 (1988).

CITING ARTICLES

For access to citing articles, you need to log in.
For access to citing articles, you need to Log in.