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首页> 外文期刊>The journal of physics and chemistry of solids >A promising novel orange-red emitting SrZnV2O7:Sm3+ nanophosphor for phosphor-converted white LEDs with near-ultraviolet excitation
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A promising novel orange-red emitting SrZnV2O7:Sm3+ nanophosphor for phosphor-converted white LEDs with near-ultraviolet excitation

机译:一种有前途的新颖的发射橙红色的SrZnV2O7:Sm3 +纳米磷光体,用于具有近紫外激发的磷光体转换的白光LED

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A novel trivalent samarium doped SrZnV2O7 nanophosphors was developed via urea assisted solution combustion method using metal nitrates as initial raw materials. The qualitative and quantitative phase analysis was carried out using Rietveld refinement technique. It was found to crystallize in monoclinic lattice with the P12(1)1 (14) space group. The photoluminescent spectral study of SrZnV2O7:Sm3+ revealed that the excitation of 405 nm yields the characteristic emission peaks at 569, 599, 640 and 702 nm due to (4)G(5/2) -> H-6(5/2), (4)G(5/2) -> H-6(7/2), (4)G(5/2) -> H-6(9/2) and (4)G(5/2) -> H-6(11/2) respectively. The optimum concentration of Sm3+ ion in SrZnV2O7 for best luminescence was found to be 2 mol%. The luminescence intensity was further enhanced by incorporating compensator charge R+ (R=Li, Na, and K) into the SrZnV2O7:0.02Sm(3+) nanophosphor. The critical distance for non-radiative energy transfer was calculated to be 26.64 angstrom. Dipole-dipole (d-d) interactions were ascribed as the major factor responsible for concentration quenching arising from the over-doping of the.activator ions. The results indicate that these nanophosphors are suitable candidate for PC-WLEDs using near UV excitation. (C) 2015 Elsevier Ltd. All rights reserved.
机译:通过尿素辅助溶液燃烧法,以金属硝酸盐为原料,开发了一种新型的掺三价S的SrZnV2O7纳米磷光体。使用Rietveld精制技术进行定性和定量相分析。发现在P12(1)/ n1(14)空间群的单斜晶格中结晶。 SrZnV2O7:Sm3 +的光致发光光谱研究表明,由于(4)G(5/2)-> H-6(5/2),405 nm的激发在569、599、640和702 nm处产生特征发射峰。 ,(4)G(5/2)-> H-6(7/2),(4)G(5/2)-> H-6(9/2)和(4)G(5/2) ->分别为H-6(11/2)。发现用于最佳发光的SrZnV2O7中Sm3 +离子的最佳浓度为2mol%。通过将补偿电荷R +(R = Li,Na和K)掺入SrZnV2O7:0.02Sm(3+)纳米磷光体中,可以进一步增强发光强度。非辐射能量转移的临界距离经计算为26.64埃。偶极-偶极(d-d)相互作用被认为是活化剂离子过量掺杂引起浓度猝灭的主要因素。结果表明,这些纳米磷光体是使用近紫外激发的PC-WLED的合适候选物。 (C)2015 Elsevier Ltd.保留所有权利。

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