Literature DB >> 16594726

Nanostructuration of phenylenevinylenediimide-bridged silsesquioxane: from electroluminescent molecular J-aggregates to photoresponsive polymeric H-aggregates.

Olivier J Dautel1, Guillaume Wantz, Robert Almairac, David Flot, Lionel Hirsch, Jean-Pierre Lere-Porte, Jean-Paul Parneix, Françoise Serein-Spirau, Laurence Vignau, Joël J E Moreau.   

Abstract

A new approach to control molecular aggregation of pi-conjugated chromophores in the solid state has been investigated. Our strategy was to use a modifiable bulky fragment which should induce a J-aggregation and offer the possibility to reach an H-aggregation upon its chemical modification by lateral slip of pi-conjugated molecules. The chosen fragment for that purpose was the hydrolyzable triethoxysilane function (Si(OEt)3). Our objective was to design and synthesize electroluminescent or solar cell hybrid organic-inorganic materials by the sol-gel process applied to a bifunctionalized silane. With this intention, the synthesis of the sol-gel processable phenylenevinylenediimide silsesquioxane 6 was accomplished and the study of spin-coated thin films of the pure silane precursor subjected or not to the sol-gel process has been carried out. Optical properties of 6 are consistent with the formation of J-aggregates in the solid state due to the steric hindrance introduced by the triethoxysilane units. Conversely, the spectroscopic behavior observed for the hybrid film 6F is attributed to an H-aggregation corresponding to a "card pack" orientation of the distyrylbenzeneimide chromophores in the compressed silicate network. Morevover, 6 and 6F also exhibited different electronic behaviors: light-emitting diodes exhibited high brightness with the native precursor 6 and almost no light output with the sol-gel processed silsesquioxane 6F. Photovoltaic cells showed the opposite behavior with low photocurrent generation in the precursor case and higher photocurrents with the sol-gel processed layers. These results provide a deeper understanding of the present self-assembly process that is strongly governed by the molecular packing of the oligosiloxane precursor.

Entities:  

Year:  2006        PMID: 16594726     DOI: 10.1021/ja058680z

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  2 in total

1.  Aggregation-Induced Emission-Active Hydrazide-Based Probe: Selective Sensing of Al3+, HF2 -, and Nitro Explosives.

Authors:  Sunanda Dey; Rakesh Purkait; Kunal Pal; Kuladip Jana; Chittaranjan Sinha
Journal:  ACS Omega       Date:  2019-05-14

2.  Biomimetic temporal self-assembly via fuel-driven controlled supramolecular polymerization.

Authors:  Ananya Mishra; Divya B Korlepara; Mohit Kumar; Ankit Jain; Narendra Jonnalagadda; Karteek K Bejagam; Sundaram Balasubramanian; Subi J George
Journal:  Nat Commun       Date:  2018-03-30       Impact factor: 14.919

  2 in total

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