Pure zero-dimensional Cs 4 PbBr 6 single crystal rhombohedral microdisks with high luminescence and stability
Zero-dimensional (0D) perovskite Cs PbBr has been speculated to be an efficient solid-state emitter, exhibiting strong luminescense on achieving quantum confinement. Although several groups have reported strong green luminescence from Cs PbBr powders and nanocrystals, doubts that the origin of lumin...
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Veröffentlicht in: | Physical chemistry chemical physics : PCCP 2017-11, Vol.19 (43), p.29092-29098 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Zero-dimensional (0D) perovskite Cs
PbBr
has been speculated to be an efficient solid-state emitter, exhibiting strong luminescense on achieving quantum confinement. Although several groups have reported strong green luminescence from Cs
PbBr
powders and nanocrystals, doubts that the origin of luminescence comes from Cs
PbBr
itself or CsPbBr
impurities have been a point of controversy in recent investigations. Herein, we developed a facile one-step solution self-assembly method to synthesize pure zero-dimensional rhombohedral Cs
PbBr
micro-disks (MDs) with a high PLQY of 52% ± 5% and photoluminescence full-width at half maximum (FWHM) of 16.8 nm. The obtained rhombohedral MDs were high quality single-crystalline as demonstrated by XRD and SAED patterns. We demonstrated that Cs
PbBr
MDs and CsPbBr
MDs were phase-separated from each other and the strong green emission comes from Cs
PbBr
. Power and temperature dependence spectra evidenced that the observed strong green luminescence of pure Cs
PbBr
MDs originated from direct exciton recombination in the isolated octahedra with a large binding energy of 303.9 meV. Significantly, isolated PbBr
octahedra separated by a Cs
ion insert in the crystal lattice is beneficial to maintaining the structural stability, depicting superior thermal and anion exchange stability. Our study provides an efficient approach to obtain high quality single-crystalline Cs
PbBr
MDs with highly efficient luminescence and stability for further optoelectronic applications. |
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ISSN: | 1463-9076 1463-9084 |
DOI: | 10.1039/c7cp06097a |