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      Recent Advances in Materials with Room-Temperature Phosphorescence: Photophysics for Triplet Exciton Stabilization

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      Advanced Optical Materials
      Wiley

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          Enhanced emission and its switching in fluorescent organic nanoparticles.

          A new class of organic nanoparticles (CN-MBE nanoparticles) with a mean diameter of ca. 30-40 nm, which exhibit a strongly enhanced fluorescence emission, were prepared by a simple reprecipitation method. CN-MBE (1-cyano-trans-1,2-bis-(4'-methylbiphenyl)ethylene) is very weakly fluorescent in solution, but the intensity is increased by almost 700 times in the nanoparticles. Enhanced emission in CN-MBE nanoparticles is attributed to the synergetic effect of intramolecular planarization and J-type aggregate formation (restricted excimer formation) in nanopaticles. On/off fluorescence switching for organic vapor was demonstrated with CN-MBE nanoparticles.
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            Transient analysis of organic electrophosphorescence. II. Transient analysis of triplet-triplet annihilation

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              Design of efficient molecular organic light-emitting diodes by a high-throughput virtual screening and experimental approach.

              Virtual screening is becoming a ground-breaking tool for molecular discovery due to the exponential growth of available computer time and constant improvement of simulation and machine learning techniques. We report an integrated organic functional material design process that incorporates theoretical insight, quantum chemistry, cheminformatics, machine learning, industrial expertise, organic synthesis, molecular characterization, device fabrication and optoelectronic testing. After exploring a search space of 1.6 million molecules and screening over 400,000 of them using time-dependent density functional theory, we identified thousands of promising novel organic light-emitting diode molecules across the visible spectrum. Our team collaboratively selected the best candidates from this set. The experimentally determined external quantum efficiencies for these synthesized candidates were as large as 22%.
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                Author and article information

                Journal
                Advanced Optical Materials
                Advanced Optical Materials
                Wiley
                21951071
                September 2017
                September 2017
                June 12 2017
                : 5
                : 17
                : 1700116
                Affiliations
                [1 ]Department of Materials Science and Engineering; Tokyo Institute of Technology; 2-12-1 Meguro Tokyo 152-8552 Japan
                Article
                10.1002/adom.201700116
                33bbeb72-fead-42c0-a8bb-5417877cd6e5
                © 2017

                http://doi.wiley.com/10.1002/tdm_license_1.1

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