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・ Stefan Batory Gymnasium and Lyceum (Warsaw, Poland)
・ Stefan Baumann
・ Stefan Baumeister
・ Stefan Bałuk
・ Stefan Beese
・ Stefan Beinlich
・ Stefan Bell
・ Stefan Bellof
・ Stefan Bembiński
・ Stefan Bemström
・ Stefan Berger
・ Stefan Bergkvist
・ Stefan Bergman
・ Stefan Bergtoft
・ Stefan Berislavić
Stefan Bernhard
・ Stefan Beuse
・ Stefan Bečanović
・ Stefan Białas
・ Stefan Bidstrup
・ Stefan Billborn
・ Stefan Binder
・ Stefan Birkner
・ Stefan Birčević
・ Stefan Blank
・ Stefan Bliem
・ Stefan Blomquist
・ Stefan Blunschi
・ Stefan Blöcher
・ Stefan Bobrowski


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Stefan Bernhard : ウィキペディア英語版
Stefan Bernhard

Professor Stefan Bernhard is recognized in the scientific community for his work in several applied fields pertaining to the interaction between light and transition metal complexes. His involvement in the prediction, generation, and spectroscopy of circularly polarized luminescence from synthesized chiral phosphors have significantly advanced the state-of-the-art in this relatively young sub-field of photophysical chemistry. Other contributions involve work in artificial photosynthesis and organic light emitting devices (see organic light-emitting diodes (OLED)).
==Contributions==
(Circularly Polarized Luminescence Spectroscopy (CPL) )
Capable of measuring dissymmetry factors of even weakly luminescent materials to within a reported error (as small as 10−6 ), the home-built CPL spectrometer created and used by the Bernhard lab is more sensitive than any previously demonstrated CPL spectrometer. In addition, it was shown that CPL dissymmetry factors can be (predicted computationally ) over a diverse sampling of known luminophore architectures, validating a new and facile tool for directing synthetic efforts in the search for anisotropic emitters.
Artificial Photosynthesis
Efforts in this field have focused on solution-based water photolysis. Breaking the problem into smaller components, the Bernhard lab has distinguished its efforts in photosensitization()()()()(), water photoreduction catalysis(), and water oxidation catalysis()(). These contributions consist primarily of advancement beyond prior art in catalyst longevity and electronic control.
Organic Light Emitting Devices (OLEDs)
The primary outcome of work in this field has been ionic transition metal complex devices with improved turn-on times, achieved by A) (employing ionic liquids ), or B) (attaching cationic tails of varying lengths to the luminophores ).

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