Issue 10, 2003

Assessing the performance of ab initio methods on static (hyper)polarizability predictions for silicon clusters. Si4 as a test case

Abstract

We have calculated static electric dipole (hyper)polarizabilities for a small silicon cluster, Si4. The molecular properties have been obtained from finite-field restricted-Hartree–Fock, Møller–Plesset perturbation theory, coupled-cluster and density functional theory calculations performed with carefully designed basis sets of gaussian-type functions. A large [8s6p5d2f] basis set is thought to provide near-Hartree–Fock quality results: [small alpha, Greek, macron] = 142.77 and Δα = 77.93 e2a20E−1h for the mean and the anisotropy of the dipole polarizability and [small gamma, Greek, macron] = 87.5 × 103e4a40E−3h for the mean hyperpolarizability. Electron correlation has a rather small effect on [small alpha, Greek, macron] but a relatively strong one on Δα and [small gamma, Greek, macron]. Our best values were obtained at the CCSD(T) level of theory with a [5s4p3d1f] basis set: [small alpha, Greek, macron] = 140.35, Δα = 83.78 e2a20E−1h and [small gamma, Greek, macron] = 106.3 × 103e4a40E−3h. At the same level of theory the differential (hyper)polarizability is [small alpha, Greek, macron](Si4) − 4[small alpha, Greek, macron]Si = −9.21 e2a20E−1h and is [small gamma, Greek, macron](Si4) − 4[small gamma, Greek, macron]Si = −65.3 × 103e4a40E−3h. To our knowledge, this is the first complete calculation of the dipole (hyper)polarizability of this cluster to be reported in the literature.

Article information

Article type
Paper
Submitted
05 Feb 2003
Accepted
28 Mar 2003
First published
15 Apr 2003

Phys. Chem. Chem. Phys., 2003,5, 1992-1995

Assessing the performance of ab initio methods on static (hyper)polarizability predictions for silicon clusters. Si4 as a test case

G. Maroulis and C. Pouchan, Phys. Chem. Chem. Phys., 2003, 5, 1992 DOI: 10.1039/B301441J

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