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Photoluminescence Tuning of Stable CaYGaO 4 : Bi/Eu via Compositional Modulation and Crystallographic Site Engineering for nUV wLEDs.

Chang WangZhicai YaoYifeng LeiKaiting WuWubin DaiMan Xu
Published in: Inorganic chemistry (2024)
The olivine-based gallate CaYGaO 4 (CYG) with unique cationic ordering, rich lattice sites, and self-photoluminescence (PL) is suitable for application as a host of phosphor. However, research in this area is still in its early stages, especially in high-quality full-spectrum white lighting. Herein, novel CYG: Bi 3+ /Eu 3+ with a controllable PL property is designed based on energy transfer and superposition of emissions from blue self-PL, blue PL of Bi 3+ , and red-PL of Eu 3+ . Intriguingly, PL intensity and quantum efficiency could be enhanced via codoping Li + /Zn 2+ separately/simultaneously because of their two intentional functions as both charge balancer and flux. Unlike self- and Eu 3+ PL, Bi 3+ PL is quite sensitive to the lattice environment owing to its exposed 6s 2 electronic configuration and is tuned via codoping Sr 2+ to regulate the nephelauxetic effect and crystal field splitting concurrently around Bi 3+ . Meanwhile, for further regulating the PL of Bi 3+ and obtaining "warm" white light, La 3+ is codoped into the phosphor via crystallographic site engineering to control the substitution trends of Bi 3+ at distinct lattice sites. Finally, as a proof-of-concept, a full-spectrum phosphor-converted white-light-emitting diode device under nUV pumping with remarkable color rendering index ( R a ), high luminous efficiency, and chemical/thermal stability is achieved by utilizing the individual CYG:Bi/Eu/Li/Zn/Sr/La phosphor via a remote "capping" packaging method.
Keyphrases
  • energy transfer
  • light emitting
  • quantum dots
  • heavy metals
  • risk assessment