TY - JOUR
T1 - Carbon dots-in-zeolite via in-situ solvent-free thermal crystallization
T2 - Achieving high-efficiency and ultralong afterglow dual emission
AU - Zhang, Hongyue
AU - Liu, Kaikai
AU - Liu, Jiancong
AU - Wang, Bolun
AU - Li, Chengyu
AU - Song, Wei
AU - Li, Jiyang
AU - Huang, Ling
AU - Yu, Jihong
N1 - Publisher Copyright:
© CCS Chemistry 2020.
PY - 2020/6
Y1 - 2020/6
N2 - Organic afterglow materials are highly desirable for optoelectronic applications, but they usually suffer from complex preparation process, low quantum efficiency, and short lifetime due to the ultrafast deactivation of the highly active excited states involved. Here, we succeeded in achieving solventfree thermal syntheses of high-efficiency afterglow CDs@zeolite composite materials by simply grinding the solid raw materials of zeolite and precursor CDs at room temperature, followed by thermal crystallization. This method afforded maximum embedding of CDs into growing zeolite crystals, as well as strong host-guest interaction to surpass the nonradiative transition of CDs, thus producing composite materials with ultralong dual emission of thermally activated delayed fluorescence and room temperature phosphorescence with a record high lifetime of 1.7 and 2.1 s, respectively, and the quantum yield of 90.7%. Furthermore, in a preliminary experiment, we applied the composite materials in alternatingcurrent light-emitting diode supplementary lighting, which exhibited a promising potential in optoelectronic applications.
AB - Organic afterglow materials are highly desirable for optoelectronic applications, but they usually suffer from complex preparation process, low quantum efficiency, and short lifetime due to the ultrafast deactivation of the highly active excited states involved. Here, we succeeded in achieving solventfree thermal syntheses of high-efficiency afterglow CDs@zeolite composite materials by simply grinding the solid raw materials of zeolite and precursor CDs at room temperature, followed by thermal crystallization. This method afforded maximum embedding of CDs into growing zeolite crystals, as well as strong host-guest interaction to surpass the nonradiative transition of CDs, thus producing composite materials with ultralong dual emission of thermally activated delayed fluorescence and room temperature phosphorescence with a record high lifetime of 1.7 and 2.1 s, respectively, and the quantum yield of 90.7%. Furthermore, in a preliminary experiment, we applied the composite materials in alternatingcurrent light-emitting diode supplementary lighting, which exhibited a promising potential in optoelectronic applications.
KW - Alternating-current light-emitting diode (AC LED)
KW - Carbon dots
KW - Room temperature phosphorescence (RTP)
KW - Thermally activated delayed fluorescence(TADF)
KW - Zeolite
UR - http://www.scopus.com/inward/record.url?scp=85088040995&partnerID=8YFLogxK
U2 - 10.31635/ccschem.020.201900099
DO - 10.31635/ccschem.020.201900099
M3 - Article
AN - SCOPUS:85088040995
SN - 2096-5745
VL - 2
SP - 118
EP - 127
JO - CCS Chemistry
JF - CCS Chemistry
IS - 3
ER -