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Quadratic and Cubic Optical Nonlinearities of Y‐Shaped and Distorted‐H‐Shaped Arylalkynylruthenium Complexes
Author(s) -
Morshedi Mahbod,
Kodikara Mahesh S.,
Corkery T. Christopher,
Hurst Stephanie K.,
Chavan Sanjay S.,
Kulasekera Erandi,
Stranger Rob,
Samoc Marek,
Van Cleuvenbergen Stijn,
Asselberghs Inge,
Clays Koen,
Cifuentes Marie P.,
Humphrey Mark G.
Publication year - 2018
Publication title -
chemistry – a european journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.687
H-Index - 242
eISSN - 1521-3765
pISSN - 0947-6539
DOI - 10.1002/chem.201803696
Subject(s) - hyperpolarizability , molecular physics , chemistry , substituent , absorption (acoustics) , scattering , two photon absorption , materials science , crystallography , optics , nonlinear optical , nonlinear system , physics , stereochemistry , quantum mechanics , laser
Straightforward syntheses of bis[bis{1,2‐bis(diphenylphosphino)ethane}ruthenium]‐functionalized 1,3,5‐triethynylbenzene‐cored complexes via a methodology employing “steric control” permit facile formation of Y‐shaped Sonogashira coupling products and distorted‐H‐shaped homo‐coupled quadrupolar products. Cyclic voltammetric data from these products reveal two reversible metal alkynyl‐localized oxidation processes for all complexes. The wavelengths of the linear optical absorption maxima are dominated by the nature of the peripheral alkynyl ligand rather than the substituent at the unique arm of the “Y” or at the quadrupolar complex “core”. The quadratic optical nonlinearities of the Y‐shaped complexes were assessed by the hyper‐Rayleigh scattering technique at 800 nm and employing 100 fs light pulses; introduction of donor NEt 2 and/or acceptor NO 2 to the wedge periphery resulted in non‐zero nonlinearities, with the largest β HRS,800 values being observed for the complexes containing the 4‐nitrophenylalkynyl ligands. Depolarization ratios are consistent with substantial off‐diagonal first hyperpolarizability tensor components and 2D nonlinear character. Computational studies employing time‐dependent density functional theory have been employed to assign the key low‐energy transitions in the linear optical spectra and to compute the quadratic nonlinear optical tensorial components. Cubic optical nonlinearities of the quadrupolar complexes were assessed by the Z‐scan technique over the range 500–1600 nm and employing 130 fs light pulses; two‐photon absorption cross‐sections for these distorted‐H‐shaped complexes are moderate to large in value (up to 5500 GM at 880 nm), while one example displays significant three‐photon absorption (1300×10 −80 cm 6 s 2 at 1200 nm).