Highly efficient and very robust blue-excitable yellow phosphors built on multiple-stranded one-dimensional inorganic–organic hybrid chains† †Electronic supplementary information (ESI) available. CCDC 1888939–1888944. For ESI and crystallographic data in CIF or other electronic format see DOI: 10.1039/c9sc00970a

Strong, multiple-stranded Cu–N bonds lead to a group of highly emissive 1D-Cu m I m (L) hybrid yellow phosphors with excellent thermal- and photo-stability. Inorganic–organic hybrid semiconductors are promising candidates for energy-related applications. Here, we have developed a unique class of mul...

Full description

Saved in:
Bibliographic Details
Published inChemical science (Cambridge) Vol. 10; no. 20; pp. 5363 - 5372
Main Authors Fang, Yang, Sojdak, Christopher A., Dey, Gangotri, Teat, Simon J., Li, Mingxing, Cotlet, Mircea, Zhu, Kun, Liu, Wei, Wang, Lu, ÓCarroll, Deirdre M., Li, Jing
Format Journal Article
LanguageEnglish
Published Royal Society of Chemistry 17.04.2019
Subjects
Online AccessGet full text

Cover

Loading…
More Information
Summary:Strong, multiple-stranded Cu–N bonds lead to a group of highly emissive 1D-Cu m I m (L) hybrid yellow phosphors with excellent thermal- and photo-stability. Inorganic–organic hybrid semiconductors are promising candidates for energy-related applications. Here, we have developed a unique class of multiple-stranded one-dimensional (1D) structures as very robust and efficient lighting phosphors. Following a systematic ligand design strategy, these structures are constructed by forming multiple coordination bonds between adjacent copper iodide inorganic building units Cu m I m ( m = 2, 4, 6) ( e.g. dimer, tetramer and hexamer clusters) and strong-binding bidentate organic ligands with low LUMO energies which give rise to infinite 1D chains of high stability and low bandgaps. The significantly enhanced thermal/photostability of these multiple-stranded chain structures is largely attributed to the multi-dentate nature and enhanced Cu–N bonding, and their excellent blue excitability is a result of using benzotriazole based ligands with low-lying LUMO energies. These facts are confirmed by Density Functional Theory (DFT) calculations. The luminescence mechanism of these compounds is studied by temperature dependent photoluminescence experiments. High internal quantum yields (IQYs) are achieved under blue excitation, marking the highest value reported so far for crystalline inorganic–organic hybrid yellow phosphors. Excellent thermal- and photo-stability, coupled with high luminescence efficiency, make this class of materials promising candidates for use as rare-earth element (REE) free phosphors in energy efficient general lighting devices.
Bibliography:These authors contributed equally.
ISSN:2041-6520
2041-6539
DOI:10.1039/c9sc00970a