The 81st JSAP Autumn Meeting, 2020

Presentation information

Oral presentation

13 Semiconductors » 13.8 Optical properties and light-emitting devices

[9p-Z04-1~20] 13.8 Optical properties and light-emitting devices

Wed. Sep 9, 2020 1:00 PM - 6:15 PM Z04

Yasushi Nanai(Aoyama Gakuin Univ.), Takayuki Nakanishi(NIMS)

3:30 PM - 3:45 PM

[9p-Z04-11] Single Phase Synthesis and Photoluminescent Properties of Yellow-emitting Ba5Si11Al7N25:Eu2+ phosphors

〇(D)Can HE1,2, Takashi TAKEDA2, Zhaohui HUANG1, Naoto HIROSAKI2 (1.China Univ Of Geosciences(Beijing), 2.NIMS)

Keywords:Nitridoalumosilicate, Photoluminescent Properties, Yellow-emitting phosphors

The single-particle-diagnosis approach is a facile and efficient method to develop novel luminescent materials for solid state lighting. The most critical issue for this method is achieving large-scale industrial production of powder from a single crystal[1]. The novel nitridoalumosilicate phosphor Ba5Si11Al7N25:Eu2+ was discovered by the single-particle-diagnosis method[2]. Differing from most phosphors, the phase-pure powder of Ba5Si11Al7N25:Eu2+ cannot be obtained by firing the starting materials with the stoichiometric composition of its single crystal[3]. In this work, single phase Ba5Si11Al7N25:Eu2+ powders were obtained via a double crucible method (Combination of BN crucible and Mo crucible). Upon excitation with violet light (400nm), the as-prepared samples showed a broad emission band with a maximum emission ranged from 558 nm to 591nm, and the full width at half-maximum (FWHM) increased from 87 nm to 100 nm. The excitation spectrum ranged from 350 nm to 550 nm, which indicated that the Ba5Si11Al7N25:Eu2+ phosphor could be efficiently excited with both near-UV LEDs and blue LEDs. In addition, weak thermal quenching was observed in the Ba5Si11Al7N25:1%Eu2+ phosphor. When the temperature increased up to 150 °C, the integrated emission intensity of the Ba5Si11Al7N25:1%Eu2+ phosphor still maintained 94% of the initial intensity at 30 °C. The Ba5Si11Al7N25:Eu2+ promises to be a new commercial phosphor comparable to YAG:Ce3+ for white light-emitting diodes.