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Blue Light Emitting Polyphenylene Dendrimers with Bipolar Charge Transport Moieties.


ABSTRACT: Two light-emitting polyphenylene dendrimers with both hole and electron transporting moieties were synthesized and characterized. Both molecules exhibited pure blue emission solely from the pyrene core and efficient surface-to-core energy transfers when characterized in a nonpolar environment. In particular, the carbazole- and oxadiazole-functionalized dendrimer (D1) manifested a pure blue emission from the pyrene core without showing intramolecular charge transfer (ICT) in environments with increasing polarity. On the other hand, the triphenylamine- and oxadiazole-functionalized one (D2) displayed notable ICT with dual emission from both the core and an ICT state in highly polar solvents. D1, in a three-layer organic light emitting diode (OLED) by solution processing gave a pure blue emission with Commission Internationale de l'Éclairage 1931 CIE xy = (0.16, 0.12), a peak current efficiency of 0.21 cd/A and a peak luminance of 2700 cd/m². This represents the first reported pure blue dendrimer emitter with bipolar charge transport and surface-to-core energy transfer in OLEDs.

SUBMITTER: Zhang G 

PROVIDER: S-EPMC6273451 | biostudies-literature | 2016 Oct

REPOSITORIES: biostudies-literature

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Blue Light Emitting Polyphenylene Dendrimers with Bipolar Charge Transport Moieties.

Zhang Guang G   Auer-Berger Manuel M   Gehrig Dominik W DW   Blom Paul W M PW   Baumgarten Martin M   Schollmeyer Dieter D   List-Kratochvil E J W EJ   Müllen Klaus K  

Molecules (Basel, Switzerland) 20161020 10


Two light-emitting polyphenylene dendrimers with both hole and electron transporting moieties were synthesized and characterized. Both molecules exhibited pure blue emission solely from the pyrene core and efficient surface-to-core energy transfers when characterized in a nonpolar environment. In particular, the carbazole- and oxadiazole-functionalized dendrimer (<b>D1</b>) manifested a pure blue emission from the pyrene core without showing intramolecular charge transfer (ICT) in environments w  ...[more]

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