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Negative Thermal Quenching of Efficient White‐Light Emission in a 1D Ladder‐Like Organic/Inorganic Hybrid Material
Author(s) -
Barkaoui Hamdi,
Abid Haitham,
Zelewski Szymon,
Urban Joanna,
Baranowski Michal,
Mlayah Adnen,
Triki Smail,
Plochocka Paulina,
Abid Younes
Publication year - 2019
Publication title -
advanced optical materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.89
H-Index - 91
ISSN - 2195-1071
DOI - 10.1002/adom.201900763
Subject(s) - photoluminescence , exciton , chemistry , raman spectroscopy , quantum yield , octahedron , crystal structure , materials science , crystallography , condensed matter physics , fluorescence , optics , optoelectronics , physics
The synthesis and the optical properties of a new organic–inorganic hybrid material (C 6 H 22 N 4 )[Pb 2 Br 8 ] (abbreviated as TETAPb 2 Br 8 ) is reported here. Its ladder‐like crystal structure is built up from infinite 1D chains of corner‐sharing [Pb 2 Br 8 ] 4− bi‐octahedra surrounded by tetra‐protonated triethylenetetramine (abbreviated as TETA 4+ ) organic cations. Under UV excitation, this hybrid organic–inorganic compound emits white light due to radiative recombinations of self‐trapped excitons associated with a structural distortion of the PbBr 6 octahedra. Thin films of TETAPb 2 Br 8 show a photoluminescence (PL) quantum yield of ≈11% and exhibit a Commission Internationale de l'Eclairage coordinates of (0.32, 0.37). In the low‐temperature range, the PL intensity increases with increasing temperature. This negative thermal quenching of white‐light emission is interpreted in terms of transitions between excitonic states involving an exciton–phonon interaction. The interpretations are supported by the temperature dependence of the resonant Raman scattering and by density functional theory calculations.