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Machine Learning Speeds Discovery of New Host Materials for LED Lighting

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HOUSTON, Oct. 24, 2018 — A machine learning algorithm developed at the University of Houston was able to predict the properties of more than 100,000 compounds and determine those most likely to be efficient phosphors for LED lighting. When the researchers synthesized and tested one of the compounds predicted computationally — sodium-barium-borate — they found that it offered 95 percent efficiency and outstanding thermal stability. Researchers from the University of Houston have devised a new machine learning algorithm that is efficient enough to run on a personal computer and predict the properties...Read full article

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    Photonics.com
    Oct 2018
    Research & TechnologyeducationUniversity of HoustonAmericasLEDslight sourcesmachine learningmaterialsphosphorsinorganic ledssolid-state chemistry

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