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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Photoluminescence and tunable emissions of La-2 (GeO4)O:Bi3+, Eu3+ phosphor for ultraviolet converted light emitting diodes
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Photoluminescence and tunable emissions of La-2 (GeO4)O:Bi3+, Eu3+ phosphor for ultraviolet converted light emitting diodes

机译:La-2(Geo4)O:Bi3 +,Eu3 +紫外线转换发光二极管的光致发光和可调排放

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In the past decades, a great variety of single-phase white-emitting phosphors have been developed, however most them can't satisfy us due to their low quantum efficiency and poor thermal stability. Herein, we reported a promising candidate of a white-emitting La-2 (GeO4)O:Bi3+/Eu3+ phosphor, exhibiting an efficient energy transfer, good thermal stability and high quantum efficiency. Rietveld structure refinement of La-2 (GeO4)O:Bi3+ was performed to confirm Bi3+ occupation of La sites in La-2 (GeO4)O. An analysis on the red-shift of both excitation and emission spectra of La-2 (GeO4)O:Bi3+ was made by combining the crystal structure and their spectroscopy. Thermal quenching temperature (T-50%) of La-2 (GeO4)O:Bi3+ was approximately 532 K which is higher than that (473 K) of the LED chips under high power current driving and La-2 (GeO4)O:Bi3+ presented a spectral blue-shift as an increase in temperature. Furthermore, thermal quenching of La-2 (GeO4)O:Bi3+ was explained in detail by the configurational coordinate. More importantly, single Bi3+ doped La-2 (GeO4)O presented a blue-greenish broad band at 480 nm with a high quantum efficiency (48%) and excellent thermal stability (Delta E = 0.353 eV). Energy transfer from Bi3+ to Eu3+ in La-2 (GeO4)O efficiently occurred and energy transfer mechanism of Bi3+ - Eu3+ was demonstrated to be dipole-quadrupole interaction. By codoping Eu3+ in La-2 (GeO4)O:Bi3+, La-2 (GeO4)O:Bi3+, Eu3+ phosphor exhibited the blue-green and red dual emissions. Fortunately, a single-phase white-emitting phosphor La-2 (GeO4)O:Bi3+, 0.03Eu(3+) was obtained with excellent resistance against thermal quenching and a quantum efficiency of 37%. (C) 2018 Elsevier B.V. All rights reserved.
机译:在过去的几十年中,已经开发出各种各样的单相白色发光磷光体,然而,由于它们的效率低和耐热稳定性差,大多数它们不能满足我们。在此,我们报道了白色发光LA-2(GEO4)O:Bi3 + / Eu3 +磷光体的有希望的候选者,表现出有效的能量传递,良好的热稳定性和高量子效率。 LA-2(GEO4)O:BI3 +的RIETVELD结构细化以确认LA-2(GEO4)O中LA位点的BI3 +占据。通过组合晶体结构及其光谱法制备了La-2(Geo4)O:Bi3 +的两种激发和发射光谱的红转分析。 La-2(GeO4)O:Bi3 +的热猝灭温度(T-50%)约为532 k,其高功率电流驱动和La-2(Geo4)O下的LED芯片的(473 k)高度(473 k): Bi3 +呈现出光谱蓝移,随着温度的增加。此外,通过配置坐标详细解释了La-2(Geo4)O:Bi3 +的热猝灭。更重要的是,单一Bi3 +掺杂La-2(Geo4)O在480nm处呈现出蓝绿宽带,具有高量子效率(48%)和优异的热稳定性(Delta E = 0.353eV)。从Bi3 +到La-2(Geo4)O中的能量转移到Eu3 +(Geo4)O有效地发生了Bi3 + - &gt的能量转移机制。 Eu3 +被证明是偶极性 - 四极相互作用。通过为LA-2(GEO4)O:Bi3 +,La-2(Geo4)O:Bi3 +,Eu3 +磷光体显示出蓝绿和红色双排放量。幸运的是,具有优异的热猝灭的抗性和37%的量子效率获得单相白色发光磷光体La-2(Geo4)O:Bi3 +,0.03Eu(3+)。 (c)2018年elestvier b.v.保留所有权利。

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