功能材料
功能材料
공능재료
JOURNAL OF FUNCTIONAL MATERIALS
2012年
10期
1288-1291
,共4页
黄海宇%向卫东%张志敏%梁晓娟%董永军%金怀东
黃海宇%嚮衛東%張誌敏%樑曉娟%董永軍%金懷東
황해우%향위동%장지민%량효연%동영군%금부동
白光LED%Ce、Cr∶YAG微晶玻璃%显色指数
白光LED%Ce、Cr∶YAG微晶玻璃%顯色指數
백광LED%Ce、Cr∶YAG미정파리%현색지수
white LED%Ce,Cr :YAG glass-ceramics%color rendering index
目前白光LED在红光波段发射较弱,导致其显色指数偏低,在白光LED用Ce∶YAG微晶玻璃中掺入Cr3+来增强红光波段的发射,从而提高显色指数。通过X射线衍射、荧光光度计、电光源参数测试对样品的晶相、光谱性能及荧光寿命进行了表征。研究了Cr3+对Ce∶YAG微晶玻璃发光性能的影响,并对其增红机理进行了初步的探讨。结果表明基质玻璃在1400℃热处理可析出纯的YAG晶相;Ce∶YAG和Ce、Cr∶YAG微晶玻璃在460nm激发下,在480~650nm产生有效发射,发射光谱中心波长位于530nm;由于Ce3+(2E)-Cr3+(4T)之间的非辐射能量传递,Ce、Cr∶YAG微晶玻璃在688、692和705nm处有红色发射峰,能有效地提高白光LED的显色性能。
目前白光LED在紅光波段髮射較弱,導緻其顯色指數偏低,在白光LED用Ce∶YAG微晶玻璃中摻入Cr3+來增彊紅光波段的髮射,從而提高顯色指數。通過X射線衍射、熒光光度計、電光源參數測試對樣品的晶相、光譜性能及熒光壽命進行瞭錶徵。研究瞭Cr3+對Ce∶YAG微晶玻璃髮光性能的影響,併對其增紅機理進行瞭初步的探討。結果錶明基質玻璃在1400℃熱處理可析齣純的YAG晶相;Ce∶YAG和Ce、Cr∶YAG微晶玻璃在460nm激髮下,在480~650nm產生有效髮射,髮射光譜中心波長位于530nm;由于Ce3+(2E)-Cr3+(4T)之間的非輻射能量傳遞,Ce、Cr∶YAG微晶玻璃在688、692和705nm處有紅色髮射峰,能有效地提高白光LED的顯色性能。
목전백광LED재홍광파단발사교약,도치기현색지수편저,재백광LED용Ce∶YAG미정파리중참입Cr3+래증강홍광파단적발사,종이제고현색지수。통과X사선연사、형광광도계、전광원삼수측시대양품적정상、광보성능급형광수명진행료표정。연구료Cr3+대Ce∶YAG미정파리발광성능적영향,병대기증홍궤리진행료초보적탐토。결과표명기질파리재1400℃열처리가석출순적YAG정상;Ce∶YAG화Ce、Cr∶YAG미정파리재460nm격발하,재480~650nm산생유효발사,발사광보중심파장위우530nm;유우Ce3+(2E)-Cr3+(4T)지간적비복사능량전체,Ce、Cr∶YAG미정파리재688、692화705nm처유홍색발사봉,능유효지제고백광LED적현색성능。
At present, the color index of white LED is low due to the weakness of red emission. The red emis- sion and color index of the Ce : YAG (Ce : Y3A15O12) phosphor used for white LED have been enhanced by do- ping Cr^3+. The crystalline phase structure, luminescence properties and lifetime were examined by X-ray dif- fraction (XRD) and photoluminescence spectroscopy, respectively. Effect of Cr^3+ on properties of the Ce : YAG glass-ceramics was studied. The principle of enhancement of red emission was also investigated. The XRD results showed that only YAG Crystal have been precipitated in the mother glass after heat treatment. Charac- teristic excitation peak located at 460nm was observed in the excitation spectra of the Ce:AG and Ce, Cr : YAG glass ceramics, which indicated the glass ceramics could be effectively excited by blue light chip. Abroad emission band center located at 530nm was observed from 480 to 650 nm using blue light chip excitation. There are three red emission peaks located at 688, 692 and 705nm in Ce, Cr : YAG glass ceramic due to a nonradiative energy transfer from the Ce^3+ (2E) level to Cr^3+ (4T) level, which could improve the color rendering index of LEDs.