z-logo
Premium
A Quantum Mechanical Study of the Second‐Order Nonlinear Optical Properties of Aryldiazenido‐Substituted Hexamolybdates: A Surprising Charge Transfer
Author(s) -
Janjua Muhammad Ramzan Saeed Ashraf,
Guan Wei,
Liu Chun Guang,
Muhammad Shabbir,
Yan Likai,
Su Zhongmin
Publication year - 2009
Publication title -
european journal of inorganic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.667
H-Index - 136
eISSN - 1099-0682
pISSN - 1434-1948
DOI - 10.1002/ejic.200900713
Subject(s) - chemistry , polarizability , ligand (biochemistry) , density functional theory , acceptor , ring (chemistry) , conjugated system , electron acceptor , electron density , crystallography , charge (physics) , electron donor , computational chemistry , electron , stereochemistry , photochemistry , molecule , organic chemistry , condensed matter physics , physics , biochemistry , receptor , quantum mechanics , catalysis , polymer
Abstract The second‐order polarizabilities, transition moments, and density of states of aryldiazenido hexamolybdates derivatives were investigated by density functional theory (DFT). System 2 [Mo 6 O 18 (N 2 C 6 H 5 )] 3– has a considerably large second‐order polarizability, 14.50 × 10 –30 esu, and it is larger than that of system 1 [Mo 6 O 18 (N 2 C 6 H 4 NO 2 )] 3– due to the absence of nitro group in the aryldiazenido ligand. The aryldiazenido ligand acts as an electron donor and the polyanion acts as an electron acceptor. The substitution of an amino(‐NH 2 ) group in the ortho / para positions on the aryldiazenido segment leads to a substantially higher nonlinear optical (NLO) response. The introduction of an electron donor(‐NH 2 ) in the ortho , meta , para , and ortho / para positions on the aryldiazenido ligand significantly enhances the second‐order polarizabilities of aryldiazenido hexamolybdates in comparison to the electron acceptor (‐NO 2 ) as in system 1 , because the electron‐donating ability was reasonably enhanced when the electron donor is attached to the aryldiazenido ligand. Furthermore, orbital analysis shows that incorporation of another phenyl (aromatic) ring in the aryldiazenido ligand leads to a maximum NLO response by reverting the direction and degree of charge transfer (CT), which might result from the C=C π‐conjugated bridge. System 8 [Mo 6 O 18 (N 2 C 14 H 11 )] 3– possesses a strikingly large and conspicuous static second‐order polarizability ( β vec ) computed to be 210.21 × 10 –30 esu. The NLO response can be tuned by subtle changes in the aryldiazenido segment; the present investigation provides important insight into the NLO properties of (aryldiazenido) hexamolybdate derivatives.(© Wiley‐VCH Verlag GmbH & Co. KGaA, 69451 Weinheim, Germany, 2009)

This content is not available in your region!

Continue researching here.

Having issues? You can contact us here