TY - JOUR
T1 - Structures and stability of medium-sized silicon clusters. III. Reexamination of motif transition in growth pattern from Si 15 to Si 20
AU - Yoo, Soohaeng
AU - Zeng, X. C.
N1 - Funding Information:
We are very grateful to valuable discussions with Professor Th. Frauenheim, Professor K.A. Jackson, and W. Hellmann. This research was supported by grants from DOE (Grant No. DE-FG02-04ER46164), NSF (Grant NOs. DMII-0210850, CHE-0427746, and MRSEC), John Simon Guggenheim Foundation, the Nebraska Research Initiative, and by the research computing facility at the University of Nebraska-Lincoln.
PY - 2005
Y1 - 2005
N2 - It has been established from experiments that stable medium-sized ionic clusters Si15 - Si20 are prolate in shape. Density-functional theories (DFTs) also predict that nearly all low-lying neutral clusters in this size range are prolate in shape. Moreover, most of them are built onto two generic structural motifs, either the tricapped-trigonal-prism (TTP) Si9 motif or the six/six Si6 Si6 (sixfold-puckered hexagonal ring Si6 plus six-atom tetragonal bipyramid Si6) motif. However, it appears that the exact location of the TTP-to-six/six motif transition is dependent on the functional (e.g., PBE or BLYP) used in the DFT calculations. Here, we present total-energy calculations for two series of clusters (one series containing six/six motif and the other containing the TTP motif) in the size range of Si16 - Si20. The calculations were based on all-electron DFT methods with a medium [6-311G (2d)] and a large (cc-pVTZ) basis sets, as well as coupled-cluster single and double substitutions (including triple excitations) [CCSD(T)] method with a modest (cc-pVDZ) basis set. In the DFT calculations, two popular hybrid density functionals, the B3LYP and PBE1PBE, were selected. It is found that the B3LYP total-energy calculations slightly favor the six/six motif, whereas the PBE1PBE calculations slightly favor the TTP motif. The CCSD(T) total-energy calculations, however, show that isomers based on the six/six motif are energetically slightly favorable in the size range of Si16 - Si20. Hence, the TTP-to-six/six motif transition is more likely to occur at Si16.
AB - It has been established from experiments that stable medium-sized ionic clusters Si15 - Si20 are prolate in shape. Density-functional theories (DFTs) also predict that nearly all low-lying neutral clusters in this size range are prolate in shape. Moreover, most of them are built onto two generic structural motifs, either the tricapped-trigonal-prism (TTP) Si9 motif or the six/six Si6 Si6 (sixfold-puckered hexagonal ring Si6 plus six-atom tetragonal bipyramid Si6) motif. However, it appears that the exact location of the TTP-to-six/six motif transition is dependent on the functional (e.g., PBE or BLYP) used in the DFT calculations. Here, we present total-energy calculations for two series of clusters (one series containing six/six motif and the other containing the TTP motif) in the size range of Si16 - Si20. The calculations were based on all-electron DFT methods with a medium [6-311G (2d)] and a large (cc-pVTZ) basis sets, as well as coupled-cluster single and double substitutions (including triple excitations) [CCSD(T)] method with a modest (cc-pVDZ) basis set. In the DFT calculations, two popular hybrid density functionals, the B3LYP and PBE1PBE, were selected. It is found that the B3LYP total-energy calculations slightly favor the six/six motif, whereas the PBE1PBE calculations slightly favor the TTP motif. The CCSD(T) total-energy calculations, however, show that isomers based on the six/six motif are energetically slightly favorable in the size range of Si16 - Si20. Hence, the TTP-to-six/six motif transition is more likely to occur at Si16.
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U2 - 10.1063/1.2043127
DO - 10.1063/1.2043127
M3 - Article
C2 - 16268693
AN - SCOPUS:27344440326
SN - 0021-9606
VL - 123
JO - Journal of Chemical Physics
JF - Journal of Chemical Physics
IS - 16
M1 - 164303
ER -