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Well-defined second-order nonlinear optical polymers by controlled radical polymerization,via multifunctional macromolecular chain transfer agent: Design,synthesis, and characterizations
Authors:Anne-Lise Roy  Chong Bui  Ileana Rau  François Kajzar  Bernadette Charleux  Maud Save  David Kreher  André-Jean Attias
Affiliation:1. UMR 7610 CNRS – UPMC, Laboratoire de Chimie des Polymères, 3 rue Galilée, 94200 Ivry, France;2. University POLITEHNICA of Bucharest, Faculty of Applied Chemistry and Materials Science, Dept. of General Chemistry, 1 Polizu Street, 011061 Bucharest, Romania;3. Institut des Sciences et Technologies Moléculaires d''Angers, MOLTECH Anjou – UMR CNRS 6200, Université d''Angers, 2 bd Lavoisier, 49045 Angers Cedex, France;4. Université de Lyon, Univ. Lyon 1, CPE Lyon, CNRS, UMR 5265, Laboratoire de Chimie, Catalyse, Polymères et Procédés (C2P2), LCPP group, 43, Bd. du 11 Novembre 1918, F-69616 Villeurbanne, France;5. CNRS, University of Pau & Pays Adour, UMR 5254, IPREM, Equipe de Physique et Chimie des Polymè?res, 2 avenue du Président Angot, Pau F-64053, France;6. ENSTA – Synthèse Organique et Réactivité, Ecole Polytechnique – UMR CNRS 7652, 91128 Palaiseau Cedex, France
Abstract:To address the issue of the aggregation in second-order nonlinear optical (NLO) polymers we developed an approach based on the synthesis of a multifunctional macromolecular chain transfer agent. The controlled monomer insertion polymerization into the main chain by a ‘reversible addition-fragmentation chain transfer’ (RAFT) mechanism allows the spatial arrangement of the NLO chromophores along the polymeric chain in order to obtain sequence-ordered polymers. In a first step, a novel trithiocarbonate based macroinitiator containing the disperse red 19 (DR19) units in the main chain was synthesized by polycondensation; in a second step, this polymeric precursor was applied to the synthesis of a sequentially ordered polymer by controlled insertion radical polymerization of styrene. Size exclusion chromatography (SEC), nuclear magnetic resonance (NMR) data revealed that, (i) for the first time, polystyrenes (PS) bearing DR19 dyes covalently bounded were obtained, and (ii) both the insertion reaction and the length of the polystyrene segments were accurately controlled. Whatever the incorporated dye amount, all the copolymers were soluble in common solvents. Second-order optical nonlinearity in corona-poled thin films was evaluated, and second harmonic coefficients up to 80 pm/V were determined for loading ratio lower than 10 wt-% (DR19/PS). This approach opens up opportunities for the incorporation of more efficient chromophores even in apolar matrices.
Keywords:Controlled radical polymerization  Second-order nonlinear optical (NLO) polymers  Multisegmented polymer
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