Literature DB >> 27976586

Photoactive/Passive Molecular Glass Blends: An Efficient Strategy to Optimize Azomaterials for Surface Relief Grating Inscription.

Audrey Laventure1, Jérémie Bourotte1, Jaana Vapaavuori1, Lucas Karperien2, Ribal Georges Sabat2, Olivier Lebel3, Christian Pellerin1.   

Abstract

Irradiation of azomaterials causes various photophysical and photomechanical effects that can be exploited for the preparation of functional materials such as surface relief gratings (SRGs). Herein, we develop and apply an efficient strategy to optimize the SRG inscription process by decoupling, for the first time, the important effects of the azo content and glass transition temperature (Tg). We prepare blends of a photoactive molecular glass functionalized with the azo Disperse Red 1 (gDR1) with a series of analogous photopassive molecular glasses. Blends with 10 and 40 mol % of gDR1 are completely miscible, present very similar optical properties, and cover a wide range of Tg from below to well above ambient temperature. SRG inscription experiments show that the diffraction efficiency (DE), residual DE, and initial inscription rate reach a maximum when Tg is 25-40 °C above ambient temperature for low to high azo content, respectively. Indeed, for a fixed 40 mol % azo content, choosing the optimal Tg enables doubling the SRG inscription rate and increasing DE 6-fold. Moreover, a higher azo content enables higher DE for a similar Tg. Spectroscopy measurements indicate that the photo-orientation of DR1 and its thermal stability are maximal with Tg around 70 °C, independent of the azo content. We conclude that the SRG potential of azomaterials depends on their capability to photo-orient but that the matrix rigidity eventually limits the inscription kinetics, leading to an optimal Tg that depends on the azo content. This study exposes clear material design guidelines to optimize the SRG inscription process and the photoactivity of azomaterials.

Entities:  

Keywords:  azobenzene; glass transition temperature; molecular glasses; photoactive materials; photoinduced orientation; surface relief grating

Year:  2016        PMID: 27976586     DOI: 10.1021/acsami.6b11849

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  1 in total

1.  Capture and light-induced release of antibiotics by an azo dye polymer.

Authors:  Stephen Atkins; Alysa Chueh; Taylor Barwell; Jean-Michel Nunzi; Laurent Seroude
Journal:  Sci Rep       Date:  2020-02-24       Impact factor: 4.379

  1 in total

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