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Room-Temperature Phosphorescence from a Series of 3-Pyridylcarbazole Derivatives
Authors:Prof Hisahiro Sasabe  Prof Yuki Kato  Dr Yuichiro Watanabe  Tatsuya Ohsawa  Dr Naoya Aizawa  Prof Wataru Fujiwara  Dr Yong-Jin Pu  Prof Hiroshi Katagiri  Prof Junji Kido
Institution:1. Research Center for Organic Electronics (ROEL) and Frontier Center for Organic Materials (FROM), Yamagata University, 4-3-16 Jonan, Yonezawa Yamagata, 992-8510 Japan;2. Department of Organic Materials Science, Graduate School of Organic Materials Science, Yamagata University, 4-3-16 Jonan, Yonezawa, Yamagata, 992-8510 Japan;3. RIKEN Center for Emergent Matter Science (CEMS), 2-1 Hirosawa, Wako, Saitama, 351-0198 Japan

PRESTO (Japan) Science and Technology Agency (JST), 4-1-8 Honcho, Kawaguchi, Saitama, 332-0012 Japan;4. RIKEN Center for Emergent Matter Science (CEMS), 2-1 Hirosawa, Wako, Saitama, 351-0198 Japan

Abstract:Exploration of pure metal-free organic molecules that exhibit strong room-temperature phosphorescence (RTP) is an emerging research topic. In this regard, unveiling the design principles for an efficient RTP molecule is an essential, but challenging, task. A small molecule is an ideal platform to precisely understand the fundamental role of each functional component because the parent molecule can be easily derivatized. Here, the RTP behaviors of a series of 3-pyridylcarbazole derivatives are presented. Experimental studies in combination with theoretical calculations reveal the crucial role of the n orbital on the central pyridine ring in the dramatic enhancement of the intersystem crossing between the charge-transfer-excited singlet state and the locally excited triplet states. Single-crystal X-ray crystallographic studies apparently indicate that both the pyridine ring and fluorine atom contribute to the enhancement of the RTP because of the restricted motion owing to weak C?H???N and H???F hydrogen-bonding interactions. The single crystal of the fluorine-substituted derivative shows an ultra-long phosphorescent lifetime (τP) of 1.1 s and a phosphorescence quantum yield (ΦP) of 1.2 %, whereas the bromine-substituted derivative exhibits τP of 0.15 s with a ΦP of 7.9 %. We believe that this work provides a fundamental and universal guideline for the generation of pure organic molecules exhibiting strong RTP.
Keywords:carbazoles  photochemistry  room-temperature phosphorescence  solid-state emission  spin–orbit coupling
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