TY - JOUR
T1 - Blue Fluorescence from BF2 Complexes of N,O-Benzamide Ligands
T2 - Synthesis, Structure, and Photophysical Properties
AU - Yamaji, Minoru
AU - Kato, Shin Ichiro
AU - Tomonari, Kazuhiro
AU - Mamiya, Michitaka
AU - Goto, Kenta
AU - Okamoto, Hideki
AU - Nakamura, Yosuke
AU - Tani, Fumito
N1 - Funding Information:
*E-mail for M.Y.: yamaji@gunma-u.ac.jp. ORCID Minoru Yamaji: 0000-0001-9963-2136 Yosuke Nakamura: 0000-0002-6047-1336 Present Address ⊥Department of Materials Science, School of Engineering, The University of Shiga Prefecture, 2500 Hassaka-cho, Hikone, Shiga 522-8533, Japan. Author Contributions All authors contributed equally. Funding This work was supported by Grants-in-Aid for Scientific Research (JP26288032 and JP17K05976) from the Japan Society for the Promotion of Science (JSPS) and was partially supported by the association for the advancement of science and technology, Gunma University.
Funding Information:
This work was supported by the Cooperative Research Program of the Network Joint Research Center for Materials and Devices to M.Y. and H.O., respectively. M.Y. acknowledges the technical staff at Kyushu University for performing the HRMS spectrometry of the new compounds under the Cooperative Research Program of the Network Joint Research Center for Materials and Devices.
PY - 2017/10/16
Y1 - 2017/10/16
N2 - Small molecules having intense luminescence properties are required to promote biological and organic material applications. We prepared five types of benzamides having pyridine, pyridazine, pyrazine, and pyrimidine rings and successfully converted them into three types of the difluoroboronated complexes, Py@BAs, as novel blue fluorophores. Py@BA having a pyridine moiety (2-Py@BA) showed no fluorescence in solution, whereas Py@BAs of pyridazine and pyrazine moieties (2,3-Py@BA and 2,5-Py@BA, respectively) emitted blue fluorescence with quantum yields of ca. 0.1. Transient absorption measurements using laser flash photolysis of the Py@BAs revealed the triplet formation of 2,3- and 2,5-Py@BAs, while little transient signal was observed for 2-Py@BA. Therefore, the deactivation processes from the lowest excited singlet state of fluorescent 2,3- and 2,5-Py@BAs consist of fluorescence and intersystem crossing to the triplet state while that of the nonfluorescent Py@BA is governed almost entirely by internal conversion to the ground state. Conversely, in the solid state, 2-Py@BA emitted intense fluorescence with a fluorescence quantum yield as high as 0.66, whereas 2,3- and 2,5-Py@BAs showed fluorescence with quantum yields of ca. 0.2. The crystal structure of 2-Py@BA took a herringbone packing motif, whereas those for 2,3- and 2,5-Py@BAs were two-dimensional sheetlike. On the basis of the difference in crystal structures, the emission mechanism in the solid state was discussed.
AB - Small molecules having intense luminescence properties are required to promote biological and organic material applications. We prepared five types of benzamides having pyridine, pyridazine, pyrazine, and pyrimidine rings and successfully converted them into three types of the difluoroboronated complexes, Py@BAs, as novel blue fluorophores. Py@BA having a pyridine moiety (2-Py@BA) showed no fluorescence in solution, whereas Py@BAs of pyridazine and pyrazine moieties (2,3-Py@BA and 2,5-Py@BA, respectively) emitted blue fluorescence with quantum yields of ca. 0.1. Transient absorption measurements using laser flash photolysis of the Py@BAs revealed the triplet formation of 2,3- and 2,5-Py@BAs, while little transient signal was observed for 2-Py@BA. Therefore, the deactivation processes from the lowest excited singlet state of fluorescent 2,3- and 2,5-Py@BAs consist of fluorescence and intersystem crossing to the triplet state while that of the nonfluorescent Py@BA is governed almost entirely by internal conversion to the ground state. Conversely, in the solid state, 2-Py@BA emitted intense fluorescence with a fluorescence quantum yield as high as 0.66, whereas 2,3- and 2,5-Py@BAs showed fluorescence with quantum yields of ca. 0.2. The crystal structure of 2-Py@BA took a herringbone packing motif, whereas those for 2,3- and 2,5-Py@BAs were two-dimensional sheetlike. On the basis of the difference in crystal structures, the emission mechanism in the solid state was discussed.
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U2 - 10.1021/acs.inorgchem.7b02013
DO - 10.1021/acs.inorgchem.7b02013
M3 - Article
C2 - 28948793
AN - SCOPUS:85031757354
SN - 0020-1669
VL - 56
SP - 12514
EP - 12519
JO - Inorganic chemistry
JF - Inorganic chemistry
IS - 20
ER -