荧光粉
材料科学
量子产额
密度泛函理论
发光
量子效率
光电子学
化学工程
荧光
光学
计算化学
物理
工程类
化学
作者
Fang Yang,Wei Liu,Simon J. Teat,Gangotri Dey,Zeqing Shen,Litao An,Dechao Yu,Lu Wang,Deirdre M. O’Carroll,Jing Li
标识
DOI:10.1002/adfm.201603444
摘要
We have designed and synthesized a family of high-performance inorganic-organic hybrid phosphor materials composed of extended and robust networks of one-, two- and three-dimensions. Following a bottom-up solution-based synthetic approach, these structures are constructed by connecting highly emissive Cu<sub>4</sub>I<sub>4</sub> cubic clusters via carefully selected ligands that form strong Cu-N bonds. They emit intensive yellow-orange light with high luminescence quantum efficiency, coupled with large Stokes shift which greatly reduces self-absorption. They also demonstrate exceptionally high framework- and photo-stability, comparable to those of commercial phosphors. The high stabilities are the result of significantly enhanced Cu-N bonds, as confirmed by the DFT binding energy and electron density calculations. Possible emission mechanisms are analyzed based on the results of theoretical calculations and optical experiments. Two-component white phosphors obtained by blending blue and yellow emitters reach an internal quantum yield (IQY) as high as 82% and correlated color temperature (CCT) as low as 2534 K. The performance level of this sub-family exceeds all other types of Cu-I based hybrid systems. The combined advantages make them excellent candidates as alternative rare-earth element (REE) free phosphors for possible use in energy-efficient lighting devices.
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