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Sol-gel processes for protection and synthesis of luminescent materials

机译:用于保护和合成发光材料的溶胶 - 凝胶方法

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摘要

Sol-gel chemistry has a very broad application area such as thin films and coatings, monoliths, powders, grains and spheres, fibers, composites, porous gels and membranes. From thin film to powder, different kind of materials with excellent control of stoichiometry, density and microstructure can be synthesized using simple equipment without the need for vacuum at relatively low temperatures. Using sol-gel, material properties can be modified by changing only one parameter during the preparation.Rare earth doped alkaline earth binary and ternary sulfides have a very special place in luminescent materials because of their relatively low synthesis temperature and broad emission spectra upon doping with europium and cerium. Particularly to obtain red or orange emission CaS:Eu2+ and SrS:Eu2+ are considered suitable candidates. Ca1−xSrxS:Eu2+ phosphors with a strong absorption in the blue region are currently also used in white-light emitting diodes. In addition to wavelength converters in LEDs, alkaline earth sulfide phosphors are employed in different areas such as display applications, electroluminescent devices and optical information storage. Nevertheless, the lack of stability with respect to water and other atmospheric components hinders their usage as phosphor hosts. A number of encapsulation techniques have been utilized to improve the stability of sulfide phosphors and sol-gel is the one of the most attractive techniques.This work focuses on thin films, protection coatings, powders and luminescent materials prepared using sol-gel chemistry. TiO2 and Al2O3 powders, thin films and protection layers were synthesized via water free sol-gel. In addition to the optical and structural properties of the products, the effect of the coating on the stability of sulfide particles was investigated. Al2O3 synthesized via sol-gel was also compared with Al2O3 synthesized via ALD (atomic layer deposition) as protection layer. Lastly, undoped and persistent luminescent Eu and Nd-doped CaAl2O4 powders were synthesized via water free sol-gel technique. Effect of the calcinations temperature and the doping concentration on the structure and photoluminescence properties was investigated.
机译:溶胶-凝胶化学的应用领域非常广泛,例如薄膜和涂层,整料,粉末,颗粒和球体,纤维,复合材料,多孔凝胶和膜。从薄膜到粉末,可以使用简单的设备合成具有优异的化学计量比,密度和微观结构控制的各种材料,而无需在相对较低的温度下进行真空处理。使用溶胶-凝胶,可以通过仅在制备过程中更改一个参数来改变材料性能。稀土掺杂的碱土二元和三元硫化物在发光材料中占有非常特殊的位置,因为它们的合成温度较低,掺杂时掺杂的发射光谱宽。 and和铈。特别是为了获得红色或橙色发射,CaS:Eu2 +和SrS:Eu2 +被认为是合适的候选物。在蓝色区域中具有强烈吸收的Ca1-xSrxS:Eu2 +荧光粉目前也用于白光发光二极管中。除了LED中的波长转换器外,碱土金属硫化物磷光体还用于不同领域,例如显示应用,电致发光器件和光学信息存储。然而,相对于水和其他大气成分缺乏稳定性阻碍了它们用作磷光体主体。多种封装技术已被用来提高硫化物磷光体的稳定性,而溶胶-凝胶是最吸引人的技术之一。这项工作的重点是使用溶胶-凝胶化学方法制备的薄膜,保护涂层,粉末和发光材料。通过无水溶胶-凝胶合成了TiO2和Al2O3粉末,薄膜和保护层。除了产品的光学和结构特性,还研究了涂层对硫化物颗粒稳定性的影响。还比较了通过溶胶-凝胶合成的Al2O3与通过ALD(原子层沉积)合成的Al2O3作为保护层。最后,通过无水溶胶-凝胶技术合成了无掺杂和持久发光的Eu和Nd掺杂的CaAl2O4粉末。研究了煅烧温度和掺杂浓度对结构和光致发光性能的影响。

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    Avci Nursen;

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  • 年度 2012
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