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Strategies for electrooptic film fabrication. Influence of pyrrole-pyridine-based dibranched chromophore architecture on covalent self-assembly, thin-film microstructure, and nonlinear optical response
Authors:Facchetti Antonio  Beverina Luca  van der Boom Milko E  Dutta Pulak  Evmenenko Guennadi  Shukla Atindra D  Stern Charlotte E  Pagani Giorgio A  Marks Tobin J
Institution:Department of Chemistry, Department of Physics and Astronomy, and the Materials Research Center, Northwestern University, Evanston, IL 60208-3113, USA. a-facchetti@northwestern.edu
Abstract:The new dibranched, heterocyclic "push-pull" chromophores bis{1-(pyridin-4-yl)-2-2-(N-methylpyrrol-5-yl)]ethane}methane (1), 1-(pyrid-4-yl)-2-(N-methyl-5-formylpyrrol-2-yl)ethylene (2), {1-(N-methylpyridinium-4-yl)-2-2-(N-methylpyrrol-5-yl)]ethane}{(1-(pyridin-4-yl)-2-2-(N-methylpyrrol-5-yl)]ethane}methane (3), N-methyl-2-1-(N-methylpyrid-4-yl)ethen-2-yl]-5-pyrid-4-yl]ethen-2-yl]pyrrole iodide (4), bis{1-(N-methyl-4-pyridinio)-2-2-(N-methylpyrrol-5-yl)]ethane}methane iodide (5), and N-methyl-2,5-1-(N-methylpyrid-4-yl)ethen-2-yl]pyrrole iodide (6) have been synthesized and characterized. The neutral (1 and 2) and monomethyl salts (3 and 4) undergo chemisorptive reaction with iodobenzyl-functionalized surfaces to afford chromophore monolayers SA-1/SA-2 and SA-3/SA-4, respectively. Molecular structures and other physicochemical properties have been defined by (1)H NMR, optical spectroscopy, and XRD. Thin-film characterization by a variety of techniques (optical spectroscopy, specular X-ray reflectivity, atomic force microscopy, X-ray photoelectron spectroscopy, and angle-dependent polarized second harmonic generation) underscore the importance of the chromophore molecular architecture as well as film growth method on film microstructure and optical/electrooptic response.
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