4.7 Article

Highly Efficient Green-Emitting Phosphors Ba2Y5B5O17 with Low Thermal Quenching Due to Fast Energy Transfer from Ce3+ to Tb3+

Journal

INORGANIC CHEMISTRY
Volume 56, Issue 8, Pages 4538-4544

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.inorgchem.7b00085

Keywords

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Funding

  1. National Key R&D Program of China [2016YFB0701003, 2016YFB0400605]
  2. National Natural Science Foundation of China [61275055, 11274007, 51402284, 11604330]
  3. Natural Science Foundation of Jilin province [20140101169JC, 20150520022JH, 20160520171JH]
  4. prior sci-tech program of innovation and entrepreneurship of oversea Chinese talent of Jilin province

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This paper demonstrates a highly thermally stable and efficient green-emitting Ba2Y5B5O17:Ce3+, Tb3+ phosphor prepared by high temperature solid-state reaction. The phosphor exhibits a blue emission band of CO3+ and green emission lines of Tb3+ upon Ce3+ excitation in the near-UV spectral region. The effect of Ce3+ to Tb3+ energy transfer on blue to green emission color tuning and on luminescence thermal stability is studied in the it samples codoped with 1% Ce3+ and various concentrations (0-40%) of Tb3+. The green emission of Tb3+ upon Ce3+ excitation at 150 degrees C can keep, on average, 92% of its intensity at room temperature, with the best one showing no intensity decreasing up to 210 degrees C for 30% Tb3+. Meanwhile, Ce3+ emission intensity only keeps 42% on average at 150 degrees C. The high thermal stability of the green emission is attributed to suppression of Ce3+ thermal de-excitation through fast energy transfer to Tb+3, which in the green-emitting excited states is highly thermally stable such that no lifetime shortening is observed with raising temperature to 210 degrees C. The predominant green emission is observed for Tb3+ concentration of at least 10% due to efficient energy transfer with the transfer efficiency approaching 100% for 40% Tb3+. The internal and external quantum yield of the sample with Tb3+ concentration of 20% can be as high as 76% and 55%, respectively. The green phosphor, thus, shows attractive performance for near-UV-based white-light-emitting diodes applications.

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