| Literature DB >> 28315081 |
Clodoaldo Valverde1,2, Rosemberg F N Rodrigues3, Daniel F S Machado4, Basílio Baseia5,6, Heibbe C B de Oliveira7.
Abstract
A supermolecular approach combined with an iterative electrostatic scheme was employed to investigate the nonlinear optical properties of the hybrid L-arginine phosphate monohydrate crystal, the procedure being aided by DFT calculations. The supermolecular scheme basically treated the molecules surrounding the unit cell as point charges; this approximation results in rapid convergence, making it a feasible method. DFT functionals of different flavors were considered: B3LYP, B2PLYP, CAM-B3LYP, ωB97, and M06HF, utilizing the 6-311 + G(d) basis set. All functionals gave sufficiently accurate values for the dipole moment (μ) with respect to the experimental value 32(2) D. For the average linear polarizability ([Formula: see text]) and the total first hyperpolarizability (β tot), good agreement was observed between the DFT-calculated values and MP2-derived results reported in the literature. For the second hyperpolarizability, both static and dynamic regimes were considered. The point-charge embedding approach led to an attenuation of the second hyperpolarizability γ for all frequencies considered. Excitations of γ were not observed for frequencies smaller than 0.1 a.u. For the second hyperpolarizability (both static and dynamic), computational results showed that L-arginine phosphate monohydrate exhibits a large nonlinear optical effect, which implies the occurrence of microscopic third-order NLO behavior.Entities:
Keywords: Dipole moment; Electrostatic effects; L-Arginine phosphate monohydrate; NLO; Second hyperpolarizability
Year: 2017 PMID: 28315081 DOI: 10.1007/s00894-017-3274-3
Source DB: PubMed Journal: J Mol Model ISSN: 0948-5023 Impact factor: 1.810