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Electronic and vibrational contributions to first hyperpolarizability of donor–acceptor-substituted azobenzene
Author(s) -
Robert Zaleśny,
Ireneusz W. Bulik,
Wojciech Bartkowiak,
Josep M. Luis,
Aggelos Avramopoulos,
Μάνθος Γ. Παπαδόπουλος,
Przemysław Krawczyk
Publication year - 2010
Publication title -
the journal of chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.071
H-Index - 357
eISSN - 1089-7690
pISSN - 0021-9606
DOI - 10.1063/1.3516209
Subject(s) - hyperpolarizability , chemistry , dipole , azobenzene , vibrational energy relaxation , density functional theory , relaxation (psychology) , polarizability , molecular physics , acceptor , computational chemistry , molecular vibration , molecule , physics , condensed matter physics , organic chemistry , psychology , social psychology
In this study we report on the electronic and vibrational (hyper)polarizabilities of donor–acceptorsubstituted azobenzene. It is observed that both electronic and vibrational contributions to the electric dipole first hyperpolarizability of investigated photoactive molecule substantially depend on the conformation. The contributions to the nuclear relaxation first hyperpolarizability are found to be quite important in the case of two considered isomers (cis and trans). Although the double-harmonic term is found to be the largest in terms of magnitude, it is shown that the total value of the nuclear relaxation contribution to vibrational first hyperpolarizability is a result of subtle interplay of higher-order contributions. As a part of the study, we also assess the performance of long-range-corrected density functional theory in determining vibrational contributions to electric dipole (hyper)polarizabilities. In most cases, the applied long-range-corrected exchange correlation potentials amend the drawbacks of their conventional counterpart

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