激光照明用GdYAG:Ce3+/CASN:Eu2+荧光玻璃的制备及其性能优化OA
Preparation and Performance Optimization of GdYAG:Ce3+/CASN:Eu2+Luminescent Glass for Laser Lighting
激光照明因其体积小、亮度高和方向性好等优势而备受关注,同时也对荧光转换材料的综合性能提出了更高要求.荧光玻璃因其制备工艺简单,在激光照明领域展现出巨大的应用潜力.然而,目前基于荧光玻璃的白光激光照明仍存在显色指数偏低、色温较高等问题,制约了其在高品质照明中的应用.本研究采用一步烧结法制备了 GdYAG:Ce3+及其与 CASN:Eu2+复合的系列荧光玻璃,系统研究了荧光粉配比对材料结构、发光特性及热稳定性的影响.结果表明,GdYAG:Ce3+可均匀分散于玻璃基质中,且其晶相结构保持稳定.在 450 nm 蓝光激光激发下,当 GdYAG:Ce3+含量为10 wt.%时,样品显色指数为 78.1,色温为 5282 K.进一步引入 CASN:Eu2+红粉并优化配比,在总荧光粉含量为 10 wt.%、GdYAG:Ce3+与 CASN:Eu2+质量分数分别为 96 wt.%+4 wt.%时,显色指数提高至 83,色温降低至 3983 K.该样品在 423 K高温下仍可保持 62.87%的室温发光强度,表现出良好的热稳定性.本研究证实了 GdYAG:Ce3+/CASN:Eu2+荧光玻璃在高品质激光照明中的发展潜力,为开发兼具高显色性与低色温的荧光转换材料提供了有效途径.
[Background and purposes]Laser lighting,as a new generation of solid-state lighting technology,has demonstrated extensive application prospects in fields,such as special lighting and high-end displays,due to its advantages of small size,high brightness and good directionality.However,this advancement also imposes higher requirements on the comprehensive performance of phosphor conversion materials.The traditional encapsulation materials composed of"organic resin+phosphor"are prone to aging and failure under high laser power due to excessive temperature.Luminescent glass,with its simple preparation process,low cost and easily tunable spectrum,is regarded as one of the most promising fluorescent conversion materials.Nevertheless,the current white light laser lighting based on luminescent glass still faces challenges,including low Color Rendering Index(CRI)and high Correlated Color Temperature(CCT),failing to meet the stringent color quality requirements for high-quality lighting applications.To address these issues,this study was aimed to develop a luminescent glass material system with high CRI,suitable CCT and excellent thermal stability,through optimizing material design and preparation processes.Specifically,based on GdYAG:Ce3+phosphor,CASN:Eu2+phosphor was introduced for mixing,with the expectation of effectively improving the white light quality through spectral complementarity,while their microstructure,luminescence properties and thermal stability were systematically studied.In this study,experimental evidence and theoretical reference were provided for the design and preparation of high-performance phosphor conversion materials for laser lighting applications. [Methods]A series of luminescent glass samples,consisting of GdYAG:Ce3+and its mixture with CASN:Eu2+,were fabricated via a one-step sintering approach.Firstly,commercial GdYAG:Ce3+phosphor and low-melting-point glass powder were mixed and ground uniformly in various mass ratios(6 wt.%to 14 wt.%),followed by sintering at 430℃in nitrogen atmosphere to fabricate the luminescent glass.While maintaining a total phosphor content of 10 wt.%,the mass ratio of GdYAG:Ce3+to CASN:Eu2+was adjusted from 98 wt.%+2 wt.%to 90 wt.%+10 wt.%,leading to a series of mixed samples.The phase composition,micromorphology and elemental distribution of the samples were systematically characterized by using X-ray diffraction(XRD),scanning electron microscopy(SEM)and energy dispersive spectroscopy(EDS).Photoluminescence spectrum,excitation spectrum and variable temperature emission spectrum were measured by using a fluorescence spectrometer.Finally,the CRI,CCT and luminous flux(LF)were measured under 450 nm blue laser excitation by means of a home-built integrating sphere spectral testing system. [Results]The GdYAG:Ce3+phosphor was uniformly dispersed within the glass matrix,with its crystal structure remaining intact,while no significant interfacial reaction or impurity phase formation was observed.In the mixed samples,GdYAG:Ce3+and CASN:Eu2+coexisted in two distinct phases with clear elemental distribution,confirming their stable combination in the matrix.Under 450 nm laser excitation,the luminescence intensity of the GdYAG:Ce3+sample increased with increasing content of GdYAG:Ce3+,while the CCT gradually decreased and the CRI first increased and then decreased.When the GdYAG:Ce3+content was 10 wt.%,the sample achieved the optimal color rendering performance,with a CRI of 78.1 and a CCT of 5282 K.After introducing the CASN:Eu2+red phosphor,the spectral coverage of the mixed sample was effectively broadened,while the addition of the red component significantly improved the white-light color quality.When the mass ratio of GdYAG:Ce3+to CASN:Eu2+was 94 wt.%+6 wt.%,the sample exhibited the highest comprehensive performance under 2.4 W laser excitation.The CRI was increased to 83,the CCT was decreased to 3983 K and the CIE chromaticity coordinates were shifted toward the warm-white region,resulting in a softer and more natural white-light visual appearance.The mixed sample can maintain 62.87%of its room-temperature luminescence intensity at a high temperature of 423 K,providing a material foundation for long-term stable operation under high-power laser lighting. [Conclusions]A series of luminescent glass samples,GdYAG:Ce3+and its mixture with CASN:Eu2+,were prepared by using a one-step sintering method.The effects of phosphor ratio on microstructure,luminescence properties and thermal stability were systematically studied.By optimizing the mixing ratio,the spectral balance between blue light conversion and red light compensation can be effectively reconciled,achieving a synergistic improvement in CRI and CCT.Under the optimal ratio,the sample exhibits a high CRI of 83,a favorable CCT of 3983 K and excellent luminescence retention at elevated temperatures,significantly improving the light color quality and practical reliability of luminescent glass for laser lighting.This work is expected to not only provide a feasible material design and processing strategy for developing high-performance luminescent glass converters suitable for high-quality laser lighting,but also further expand the application prospects of luminescent glass in the field of solid-state lighting.It holds positive reference value for advancing the development of next-generation white laser lighting devices featuring high power and high light quality.
曹旺盛;王桂录;张志永;郑喜贵;卢彦钠;孔玉强;马跃龙;郝用兴
河南科技学院 机电学院,河南 新乡 453003||郑州科技学院 机械工程学院,河南 郑州 450064郑州科技学院 机械工程学院,河南 郑州 450064||郑州科技学院 郑州市义牙种植关键零部件先进制造工程研究中心,河南 郑州 450064郑州科技学院 机械工程学院,河南 郑州 450064||郑州科技学院 郑州市义牙种植关键零部件先进制造工程研究中心,河南 郑州 450064郑州科技学院 机械工程学院,河南 郑州 450064||郑州科技学院 河南省数字化智能装备工程研究中心,河南 郑州 450064郑州科技学院 机械工程学院,河南 郑州 450064||郑州科技学院 郑州市义牙种植关键零部件先进制造工程研究中心,河南 郑州 450064郑州科技学院 机械工程学院,河南 郑州 450064||郑州科技学院 郑州市义牙种植关键零部件先进制造工程研究中心,河南 郑州 450064河南工业大学 机电工程学院,河南 郑州 450001||嵩山实验室,河南 郑州 450046郑州科技学院 机械工程学院,河南 郑州 450064||郑州科技学院 郑州市义牙种植关键零部件先进制造工程研究中心,河南 郑州 450064
化学化工
激光照明荧光玻璃显色指数色温发光性能
laser lightingluminescent glasscolor rendering indexcorrelated color temperatureluminescent properties
《陶瓷学报》 2026 (3)
528-536,9
河南省科技攻关项目(232102211074,222102210023,252102221053)嵩山实验室预研项目(YYJC072022020).
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