以Ca-Si-Al-O玻璃为主要原料,通过添加Eu_2O_3,采用碳热还原氮化法合成出Ca-α-Si Al ON∶Eu荧光粉体。借助X射线衍射仪(XRD)、扫描电子显微镜(SEM)、紫外-可见分光光度计和荧光分光光度计等手段,对合成Ca-α-Si Al ON∶Eu的物相组成、...以Ca-Si-Al-O玻璃为主要原料,通过添加Eu_2O_3,采用碳热还原氮化法合成出Ca-α-Si Al ON∶Eu荧光粉体。借助X射线衍射仪(XRD)、扫描电子显微镜(SEM)、紫外-可见分光光度计和荧光分光光度计等手段,对合成Ca-α-Si Al ON∶Eu的物相组成、显微结构及发光性能进行表征。结果表明:(1)以Ca O,Al_2O_3,Si O_2为原料,合成的Ca-SiAl-O非晶玻璃具有Si O4四面体与Al O4四面体相互连接的架状结构;(2)以Ca-Si-Al-O玻璃为主要原料,通过添加Eu_2O_3,在1450℃碳热还原氮化合成出呈棱柱状形貌的Ca-α-Si Al ON粉体,其中Eu离子在Ca-α-Si Al ON中实现了良好的固溶;(3)合成的Ca-α-Si Al ON∶Eu在紫外-可见光部分具有较强的吸收,在420 nm的激发下,发射光谱的峰值波长为~570 nm,实现了黄绿光发射,归属于Eu^(2+)的4f^65d-4f^7跃迁。展开更多
Eu-doped Ca-α-SiAlON yellow phosphors, with the compositions Ca0.72Eu0.08Si9.56Al2.44O0.84N15.16, were prepared by a highly efficient combustion synthesis method. By optimizing the starting compositions of reactants ...Eu-doped Ca-α-SiAlON yellow phosphors, with the compositions Ca0.72Eu0.08Si9.56Al2.44O0.84N15.16, were prepared by a highly efficient combustion synthesis method. By optimizing the starting compositions of reactants and choosing appropriate post-annealing conditions, phase-pure, uniform and fine Ca-α-sialon:Eu2+ phosphors possessing the particle size ranging -3-5μm, and good luminescence properties with an intense emission band that peaks at 592 nm under n-UV or blue light excitation were ob-tained. The results indicated that combustion synthesis method was an energy efficient, time saving and low cost way to prepare Ca-α-SiAlON phosphors by controlling the mass ratio of comburents. A combination with post-annealing treatment was desired for further increase of the properties of Ca-α-SiAlON phosphors.展开更多
采用一种保温辅助(TIA)的燃烧合成工艺,高效、快捷地制备出了高性能Eu^(2+)掺杂的Ca-α-Si Al ON荧光粉。在传统的燃烧合成工艺的基础上,在反应物原料的外部包裹氮化硅保温层,显著阻碍了燃烧过程中的热量散失,使体系处于高温反应区的时...采用一种保温辅助(TIA)的燃烧合成工艺,高效、快捷地制备出了高性能Eu^(2+)掺杂的Ca-α-Si Al ON荧光粉。在传统的燃烧合成工艺的基础上,在反应物原料的外部包裹氮化硅保温层,显著阻碍了燃烧过程中的热量散失,使体系处于高温反应区的时间延长至原有工艺的3倍以上,从而促进了晶体的充分生长和发育。通过使用XRD、SEM、PL光谱等测试手段对产物进行全面分析,发现在使用了氮化硅保温层的样品中,产物为纯相的Ca-α-Si Al ON,颗粒的结晶良好,呈现等轴状形貌,粒径分布均匀。PL光谱测试表明,其在250~350 nm和350~450 nm区间内存在2个较宽的吸收带,在568 nm附近处有较强的黄光发射。包裹了氮化硅保温层后,产物的荧光性能有了明显改进,激发光谱和发射光谱的强度均有显著提高。展开更多
文摘以Ca-Si-Al-O玻璃为主要原料,通过添加Eu_2O_3,采用碳热还原氮化法合成出Ca-α-Si Al ON∶Eu荧光粉体。借助X射线衍射仪(XRD)、扫描电子显微镜(SEM)、紫外-可见分光光度计和荧光分光光度计等手段,对合成Ca-α-Si Al ON∶Eu的物相组成、显微结构及发光性能进行表征。结果表明:(1)以Ca O,Al_2O_3,Si O_2为原料,合成的Ca-SiAl-O非晶玻璃具有Si O4四面体与Al O4四面体相互连接的架状结构;(2)以Ca-Si-Al-O玻璃为主要原料,通过添加Eu_2O_3,在1450℃碳热还原氮化合成出呈棱柱状形貌的Ca-α-Si Al ON粉体,其中Eu离子在Ca-α-Si Al ON中实现了良好的固溶;(3)合成的Ca-α-Si Al ON∶Eu在紫外-可见光部分具有较强的吸收,在420 nm的激发下,发射光谱的峰值波长为~570 nm,实现了黄绿光发射,归属于Eu^(2+)的4f^65d-4f^7跃迁。
基金Project supported by the National Natural Science Foundation of China(51302311)the National High Technology Research and Development Program of China(2009AA03Z211)
文摘Eu-doped Ca-α-SiAlON yellow phosphors, with the compositions Ca0.72Eu0.08Si9.56Al2.44O0.84N15.16, were prepared by a highly efficient combustion synthesis method. By optimizing the starting compositions of reactants and choosing appropriate post-annealing conditions, phase-pure, uniform and fine Ca-α-sialon:Eu2+ phosphors possessing the particle size ranging -3-5μm, and good luminescence properties with an intense emission band that peaks at 592 nm under n-UV or blue light excitation were ob-tained. The results indicated that combustion synthesis method was an energy efficient, time saving and low cost way to prepare Ca-α-SiAlON phosphors by controlling the mass ratio of comburents. A combination with post-annealing treatment was desired for further increase of the properties of Ca-α-SiAlON phosphors.
文摘采用一种保温辅助(TIA)的燃烧合成工艺,高效、快捷地制备出了高性能Eu^(2+)掺杂的Ca-α-Si Al ON荧光粉。在传统的燃烧合成工艺的基础上,在反应物原料的外部包裹氮化硅保温层,显著阻碍了燃烧过程中的热量散失,使体系处于高温反应区的时间延长至原有工艺的3倍以上,从而促进了晶体的充分生长和发育。通过使用XRD、SEM、PL光谱等测试手段对产物进行全面分析,发现在使用了氮化硅保温层的样品中,产物为纯相的Ca-α-Si Al ON,颗粒的结晶良好,呈现等轴状形貌,粒径分布均匀。PL光谱测试表明,其在250~350 nm和350~450 nm区间内存在2个较宽的吸收带,在568 nm附近处有较强的黄光发射。包裹了氮化硅保温层后,产物的荧光性能有了明显改进,激发光谱和发射光谱的强度均有显著提高。