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Nonlinear optical properties and application of a chiral and photostimulable iron(II) compound
Author(s) -
Antonio Iazzolino,
Amine Ould Hamouda,
Ahmad Naïm,
Olaf Stefańczyk,
Patrick Rosa,
E. Freysz
Publication year - 2017
Publication title -
applied physics letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.182
H-Index - 442
eISSN - 1077-3118
pISSN - 0003-6951
DOI - 10.1063/1.4981254
Subject(s) - chirality (physics) , enantiomer , circular dichroism , chemistry , femtosecond , second harmonic generation , crystallography , absorption (acoustics) , resonance (particle physics) , metal , ligand (biochemistry) , analytical chemistry (journal) , laser , materials science , stereochemistry , atomic physics , optics , physics , organic chemistry , chiral symmetry , biochemistry , receptor , quantum mechanics , nambu–jona lasinio model , composite material , quark
International audienceWe measure linear absorption, circular dichroïsm, second harmonic and sum frequency generation in the [-Fe(phen) 3 ](Δ-As 2 (tartarate) 2), [-Fe(phen) 3 ](-As 2 (tartarate) 2) enantiomers of an Fe(II) complex. In the solid state, the chirality of this compound results from the introduction of the (As 2 (tartarate) 2) chiral anions. Linear absorption and X-ray diffraction indicate that Fe(II) is in the low-spin state. Circular dichroïsm reveals that in the solid state, these compounds are chiral, whereas the complexes racemize in solution. A large second harmonic generation signal is recorded using thin films from these two enantiomers. The second-order susceptibility of these compounds is evaluated across the visible spectral range. It displays a resonance at 520 nm, which is associated with the metal-to-ligand charge transfer occurring within the complex. At its maximum, = 6.4 pm V-1 is more than 1.4 times larger than the well-known beta-BaB 2 O 4 nonlinear crystal (~4.4 pm V-1). Finally, we demonstrate a useful application for a thin film from this compound, which characterizes the cross-correlation of two femtosecond laser pulses

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