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1.
Tailored photoluminescence of YAG:Ce phosphor through various methods   总被引:4,自引:0,他引:4  
Trivalent cerium Ce3+ (Ce) activated yttrium aluminum garnet Y3Al5O12 (YAG) phosphor was synthesized by two methods: solid state reaction (SS), and combustion (CB) with urea, respectively. The crystallization and luminescent properties of the phosphors were studied. Factors influencing on the intensity of luminescence and the location of emission band of YAG:Ce, such as the type of flux used in SS, the reaction atmosphere, the concentration of activator, were investigated in detail. We accomplished red or blue shift of Ce emission band by a number of techniques in order to match with the variable emission wavelength of blue light emitting diodes. The change of emission in color coordinates was illustrated by chromaticity. Co-doping other rare earth ions with Ce3+ ions into YAG was attempted to increase the color rendering index.  相似文献   

2.
White light-emitting diodes (WLEDs) were fabricated by combining InGaN-based blue light-emitting diodes (LEDs) with highly luminescent Tb3Al5O12:Ce3+ (TAG:Ce), Y3Al5O12:Ce3+ (YAG:Ce), and Sr3SiO5:Eu2+ (SS:Eu). The TAG:Ce-based WLED showed a color rendering index (R a ) of 79 and a luminous efficiency (η L ) of 34.1 lm/W at 20 mA. The YAG:Ce-based WLED and the SS:Eu-based WLED showed low R a values of 75 and 57 but high luminous efficiency values of 38.9 and 41.3 lm/W at 20 mA, respectively. When a mixture of YAG:Ce and SS:Eu was coated on a blue LED and the resultant WLED operated at 20 mA, the WLED showed a highly bright white light similar to daylight (η L =40.9 lm/W, color temperature T c =5,716 K, and R a =76). Moreover, the WLED showed stable color coordinates against a considerable variation of applied current.  相似文献   

3.
Ke Li  Changyu Shen 《Optik》2012,123(7):621-623
Nano-YAG:Ce3+ and YAG:Ce3+,Gd3+ phosphors were synthesized by glycothermal method. The X-ray diffraction (XRD) measurements showed that the samples can be well-crystallized at 600 °C. The transition electron microscope (TEM) showed that the particles have sizes mostly in the range between 35 and 100 nm. The YAG:Ce nano-phosphor had a wide emission band ranging from blue to yellow peaking at 532 nm, due to the transition from the lowest 5d band to 2F7/2, 2F5/2 states of the Ce3+ ion. Red-shift of emission peak wavelength from 532 nm to 568 nm has been achieved as doping Gd3+ ions into the YAG:Ce3+ to substitute some Y3+ ions. White LEDs were fabricated by combining GaN (460 nm) chip with the YAG:Ce3+ and YAG:Ce3+,Gd3+. Color rendering index of the white LED as a function of the ratios of theses two kinds of phosphors was studied. As the ratio of YAG:Ce3+,Gd3+ phosphor increased, the color rendering index of the LED improved significantly under the forward bias of 20 mA. As the ratio of YAG:Ce3+ and YAG:Ce3+,Gd3+ was 11:9, the white LED had a color rendering index, CIE chromaticity coordinates and color temperature Tc of 85, (0.3116, 0.3202) and 6564 K, respectively.  相似文献   

4.
Solid-phase color converter-based quantum dots (QDs) white light-emitting diodes (WLEDs) have become promising next-generation solid-state light sources. However, the development of these WLEDs’ production still suffers from constraints involving insufficient color-rendering index (CRI), low color stability, and short operation lifetimes. Here, thick-shell Cd0.05Zn0.95S/CdSe/CdxZn1–xS spherical quantum wells are developed with good color tunability from green to red regions and high photoluminescence quantum yield (up to 88% for green wavelengths). QDs with five emission colors are used to fabricate a series of WLEDs, which possess a good correlated color temperature tunability from warm (3210 K) to cool (22 000K) white light, and a high CRI Ra (>90). Specifically, the neutral white light device with Commission Internationale de l´Eclairage (CIE, International Commission on illumination) of (0.36, 0.36) and the standard white light device with CIE of (0.33, 0.33) achieve a CRI Ra up to 95.8 and 95.11, respectively, they also exhibit long operating life and great color stability. These results indicate that the improvement of the performance and stability of the WLED based on thick-shell spherical quantum wells is remarkable progress in the commercialization of QD-based solid-state lighting.  相似文献   

5.
艾哲  倪帅帅  张亚非 《发光学报》2015,36(11):1282-1288
采用逐步热注射法合成了用于白光LED的CuInS2/ZnS(CIS/ZnS)核壳结构量子点.通过调整Cu/In的比率, 在CuInS2(CIS)量子点的基础上, 合成了发射波长在570~650 nm之间可调的CIS/ZnS量子点.与CIS量子点的低量子产率相比, 具有核壳结构的CIS/ZnS量子点的量子产率达到了78%.通过在黄光荧光粉YAG :Ce3+表面旋涂CIS/ZnS量子点的方式制备了暖白光LED器件.在工作电流为10 mA时, 暖白光LED的发光效率达到了244.58 lm/W.由于CIS/ZnS量子点的加入, 所制备的白光LED器件的显色指数达到86.7且发光颜色向暖色调发生了转移, 相应的色坐标为(0.340 6, 0.369 0).  相似文献   

6.
Nizamoglu S  Erdem T  Demir HV 《Optics letters》2011,36(10):1893-1895
We propose and demonstrate single-chip white-light-emitting diodes (WLEDs) integrated with semiconductor nanophosphors of colloidal quantum dots for high scotopic/photopic (S/P) ratio. These color conversion WLEDs achieve S/P ratios over 3.00, which exceeds the current limit of 2.50 in common lighting technologies, while sustaining sufficient levels of color rendering index.  相似文献   

7.
Heteroatom doping can drastically alter electronic characteristics of carbon nitride quantum dots, thus resulting in unusual properties and related applications. Herein, we used sulfur as the doping element and investigated the influence of doping on the electronic distribution of carbon nitride and the corresponding fluorescent property. A simple synthetic strategy was applied to prepare sulfur-doped carbon nitride (S-g-C3N4) quantum dots through ultrasonic treatment of bulk S-g-C3N4. Characterization results demonstrated that the prepared S-g-C3N4 quantum dots with an average size of 2.0 nm were successfully prepared. Fluorescent properties indicated that S-g-C3N4 quantum dots have an emission peak at 460 nm and cover the emission spectra region up to 550 nm. Furthermore, the fluorescent intensity is greatly increased due to the sonication of bulk S-g-C3N4 into quantum dots. As a result, S-g-C3N4 quantum dots not only show a blue cell imaging, but have a bright green color. Therefore, S-g-C3N4 quantum dot is a promising candidate for bioimaging benefiting from the efficient fluorescent property, good biocompatibility, and low toxicity.  相似文献   

8.
Jang HS  Jeon DY 《Optics letters》2007,32(23):3444-3446
White-light-emitting diodes (WLEDs) were fabricated by combining a yellow Sr3SiO5:Ce3+, Li+ phosphor with a blue light-emitting diode (LED) (460 nm chip) or a near ultraviolet (n-UV) LED (405 nm chip), respectively. Color temperature (Tc) of Sr3SiO5:Ce3+, Li+-based WLEDs could be tuned from 6500 to 100,000 K (blue LED pumping) and from 4900 to 50,000 K (n-UV LED pumping) without mixing with other phosphors. The blue LED-pumped WLED showed excellent white light (luminous efficiency=31.7 lm/W, Tc=6857 K) at 20 mA. This WLED showed a stable color coordinates property against an increase of the forward current. An n-UV LED-pumped WLED also showed bright white light (25.0 lm/W, 5784 K) at 20 mA.  相似文献   

9.
The color rendering index (CRI) and structural stability of cerium doped yttrium aluminum garnet (YAG:Ce) based phosphors have been enhanced by replacing Y3+ ions by larger radius ions (Tb3+, Gd3+, Eu3+, and Sm3+) at the dodecahedral site and replacing Al3+ ions by larger ones (Ga3+, Y3+, Tb3+, Gd3+, and Sm3+) at the octahedral site. These aluminum garnet crystalline powders were prepared by solvothermal reaction method at 300 °C for 48 h. The lattice constant values of synthetic aluminum garnet crystalline powders are larger than that of YAG and the emission wavelength of Ce3+ ion of these samples is longer than that of YAG:Ce. FESEM and TEM studies revealed that the Ln3Ga2Al3O12 and Ln3Al2Al3O12 crystalline powders have 3-dimensional star-like morphology with submicron size and good crystallinity, while, Ln3(LnAl)Al3O12 garnet crystalline powders were cubic crystalline phases and shaped as cubes with the round edge having an approximate diameter of about 200–400 nm. All the prepared powders were grown along (100) direction and crystallized into single crystal. Also, the effects of treatment time and reaction temperature on the structure of aluminum garnet crystalline powders have been investigated.  相似文献   

10.
采用一步法合成了510,550和630 nm三种峰值的高稳定性、高量子效率核壳结构CdSe/ZnS量子点材料,其量子产率分别达到82%,98%,97%。将该量子点材料取代传统的荧光粉材料,与硅胶均匀混合后作为光转换层涂覆到蓝色InGaN LED芯片上,制备了白光LED器件。通过依次添加不同颜色量子点制备的量子点光转换层,考察了510,550和630 nm三色CdSe/ZnS量子点在硅胶中的不同配比对白光LED器件性能的影响,研究了不同颜色量子点之间的能量转换机制,利用量子点对白光光谱及其色坐标的影响机制,得到优化的白光器件结果及其三色量子点的配比,结果表明,当绿色、黄绿色、红色三种量子点之间的配比为24∶7∶10时,得到高稳定性、高效率的正白光器件特性,在电流20~200 mA范围内,色温变化为4 607~5 920 K,色坐标变化为(0.355 1,0.348 3)~(0.323 4,0.336 1),显色指数变化为77.6~84.2,器件最高功率效率达到31.69 lm W-1@20 mA。另外,为了进一步考察器件性能稳定的原因,研究了时间、温度以及UV处理对CdSe/ZnS QDs/硅胶混合光转换材料稳定性的影响,结果表明,器件的高稳定性可归因于所采用的一步法合成的核壳结构量子点材料本身的稳定性,研究的优化器件结果是一种低能耗的优质白光光源,可使人们真实地感知物体的原貌,在正白光光源领域具有很好的应用前景。  相似文献   

11.
为克服因混合不同卤化物钙钛矿量子点发生阴离子交换反应、不稳定的红光发射卤化物钙钛矿量子点等而导致在获取白光发射方面存在的不足,提出了一种可以在大气环境下合成Tb3+,Eu3+稀土离子共掺杂全无机卤化物钙钛矿量子点的方法。调节Tb3+,Eu3+稀土离子的掺杂比例,调控从钙钛矿量子点主晶格到Tb3+和Eu3+离子的能量转移,获得了单一组分、白光发射的钙钛矿量子点(Tb,Eu):CsPbCl3和(Tb,Eu):CsPb(Cl/Br)3,并对量子点的形貌、结构、发光性能及能量传递机理和稳定性进行了详细研究。研究结果表明:在365nm激光激发下,不同含量Tb3+/Eu3+离子共掺杂的钙钛矿量子点(Tb,Eu):CsPbCl3发射光谱对应的色坐标位于1931色度图中的白光区域。在进料比PbCl2∶TbCl3∶EuCl3为1∶1.5∶1时,量子产率为3.59%,比纯的CsPbCl3量子点的量子产率(0.57%)提高了6倍。进一步研究发现,该(Tb,Eu):CsPbCl3量子点在空气中储存2个月之后,量子产率几乎保持不变(3.63%),保持了良好的稳定性。此外,研究了采用不同溶剂(正辛烷、十八烯)合成Tb3+/Eu3+共掺杂钙钛矿量子点的发光特性。Tb3+/Eu3+离子共掺杂的钙钛矿量子点(Tb,Eu):CsPbCl3可实现单一组分的白光发射,有良好的稳定性,具备一定的应用前景。  相似文献   

12.
Sr6BP5O20:Eu2+ phosphor was prepared by the solid-state reaction method under a weak reductive atmosphere and the photoluminescence properties were studied systematically. The bluish-green emission band of Sr6BP5O20:Eu2+ phosphor is peaking at 475 nm, and the excitation bands are broad with peaks at about 290 and 365 nm with a shoulder around 390 nm, respectively. By combining with Ga(In)N-based near-ultraviolet LEDs, a bluish-green LED was fabricated based on the Sr6BP5O20:Eu2+ phosphor, and a novel intense white LED was fabricated based on the bluish-green phosphor Sr6BP5O20:Eu2+ and the red phosphor (Sr,Ca)5(PO4)3Cl:Eu2+,Mn2+. When this two-phosphor white LED is operated under 20-mA forward-bias current at room temperature, the Commission Internationale de l’Eclairage(CIE) chromaticity coordinates (x,y), the correlated color temperature Tc, and the color rendering index Ra are calculated to be (0.3281,0.3071), 5687 K, and 87.3, respectively. The dependence of the bluish-green and two-phosphor white LEDs on different forward-bias currents from 5 mA to 50 mA shows a similar behavior. As the current increases, the relative intensity simultaneously increases. The CIE chromaticity coordinates (x,y) of the two-phosphor white LED tend to decrease. Consequently, the correlated color temperature Tc increases from 3800 K to 9400 K and the color rendering index Ra of the two-phosphor white LED increases from 83.4 to 91.8 simultaneously. PACS 07.60.-j; 42.70.-a; 71.55.Eq  相似文献   

13.
Eu3+, Pr3+, or Gd3+codoped Ce:YAG single crystals were grown by using the Czochralski method. The photoluminescence(PL) emission and excitation spectra and transmittance were measured and investigated. The additional red-emitting bands were observed in the PL emission spectra of Eu,Ce:YAG and Pr,Ce:YAG single crystals and the formation of noticeable peaks was studied with reference to the schematic energy level diagrams. A red-shifted phenomenon was observed in the PL emission spectrum of Gd,Ce:YAG. With codoped Eu3+, Pr3+, or Gd3+ions, warmer white light was achieved for the white light emitting diodes and the color rendering index became higher.  相似文献   

14.
Currently, the major commercial white light‐emitting diode (WLED) is the phosphor‐converted LED made of the InGaN blue‐emitting chip and the Ce3+:Y3Al5O12 (Ce:YAG) yellow phosphor dispersed in organic epoxy resin or silicone. However, the organic binder in high‐power WLED may age easily and turn yellow due to the accumulated heat emitted from the chip, which adversely affects the WLED properties such as luminous efficacy and color coordination, and therefore reduces its long‐term reliability as well as lifetime. Herein, an innovative luminescent material: transparent Ce:YAG phosphor‐in‐glass (PiG) inorganic color converter, is developed to replace the conventional resin/silicone‐based phosphor converter for the construction of high‐power WLED. The PiG‐based WLED exhibits not only excellent heat‐resistance and humidity‐resistance characteristics, but also superior optical performances with a luminous efficacy of 124 lm/W, a correlated color temperature of 6674 K and a color rendering index of 70. This easy fabrication, low‐cost and long‐lifetime WLED is expected to be a new‐generation indoor/outdoor high‐power lighting source.  相似文献   

15.
基于Ce:YAG单晶的白光发光二极管性能研究   总被引:2,自引:0,他引:2  
陆神洲  杨秋红  徐峰  王永刚 《光学学报》2012,32(3):323001-259
以Ce:YAG单晶取代传统Ce:YAG荧光粉用于制备白光发光二极管(LED),研究了Ce:YAG单晶厚度及驱动电压的变化对其发射光谱、色坐标、亮度、光视效能和色温的影响。研究结果表明,在基于Ce:YAG单晶的白光LED中,发射光的色坐标以及蓝光与黄绿光之间的相对强度可通过对Ce:YAG单晶片厚度的改变进行调整。在恒定电压驱动下,白光LED样品的亮度、光视效能和色温均随单晶片厚度的减小而增加。当Ce:YAG单晶厚度为0.6mm时,可获得较纯的白发射光,并且其色坐标具有较高的可靠性和稳定性,基本不受驱动电压变化的影响。研究结果表明Ce:YAG单晶是一种可用于新型白光LED的理想荧光材料。  相似文献   

16.
基于量子点荧光粉白光发光二极管(WLED)是由蓝色GaN芯片和发红光及绿光的CdSe/CdS/ZnS量子点(QDs)组成。因为CdSe量子点的发射波长可在510~620nm之间调节,导致了其色坐标和色差的可变。采用的CdSe量子点是在制备无机前驱体和非配位溶剂的基础上通过合成方法得到的。实验证实温暖和寒冷白光辐射是由于色温在40009000K区间变化;不同的偏置电压导致了颜色坐标的变化,增加工作时间在90min内对白光发射的稳定性进行分析得到稳定光谱。  相似文献   

17.
白光LED用稀土荧光粉的制备和性质   总被引:27,自引:18,他引:9       下载免费PDF全文
在还原气氛保护下利用高温固相法合成了化学组分为(M1,M2)10(PO4)6X2(M1=Ca,Sr,Ba;M2=Eu,Mn;X=F,Cl,Br)的可被紫光激发的蓝光、绿光和红光荧光粉,制备了紫光LED芯片+蓝光荧光粉+YAG荧光粉的二基色白光LED;紫光LED芯片+蓝光荧光粉+红光荧光粉的二基色白光LED,以及紫光LED芯片+蓝光荧光粉+绿光荧光粉+红光荧光粉的三基色白光LED。测试了所有制备的白光LED在不同的直流电驱动下的色度坐标、相关色温和显色指数。  相似文献   

18.
Ca2B2O5:RE (RE = Eu3+, Tb3+, Dy3+) nanofibers were synthesized by the hydrothermal reaction method. The structural refinement was conducted on the base of the X-ray powder diffraction (XRD) measurements. The surface properties of the Ca2B2O5:RE (RE = Eu3+, Tb3+, Dy3+) nanofibers were investigated by the measurements such as the scanning electron microscope (SEM), transmission electron microscope (TEM), and the energy dispersive spectrum (EDS). The nanofiber has a diameter of about 100 nm and a length of several micrometers. The luminescence properties such as photoluminescence excitation (PLE) and emission spectra (PL), decay lifetime, color coordinates, and the absolute internal quantum efficiency (QE) were reported. Ca2B2O5:Eu3+ nanofibers show the red luminescence with CIE coordinates of (x = 0.41, y = 0.51) and the luminescence lifetime of 0.63 ms. The luminescence of Ca2B2O5:Tb3+ nanofibers is green color (x = 0.29, y = 0.53) with the lifetime of 2.13 ms. However, Dy3+-doped Ca2B2O5 nanofibers present a single-phase white-color phosphor with the fluorescence decay of 3.05 ms. Upon near-UV excitation, the absolute quantum efficiency is measured to be 65, 35, and 37 % for Eu3+-, Tb3+-, Dy3+-doped Ca2B2O5 nanofibers, respectively. It is suggested that Ca2B2O5:RE (RE = Eu3+, Tb3+, Dy3+) nanofibers could be an efficient phosphor for lighting and display.  相似文献   

19.
Nizamoglu S  Erdem T  Sun XW  Demir HV 《Optics letters》2010,35(20):3372-3374
Warm-white LEDs (WLEDs) with high spectral quality and efficiency are required for lighting applications, but current experimental performances are limited. We report on nanocrystal quantum dot (NQD) hybridized WLEDs with high performance that exhibit a high luminous efficacy of optical radiation exceeding 350lm/W(opt) and a high color rendering index close to 90 at a low correlated color temperature <3000K. These spectrally engineered WLEDs are obtained using a combination of CdSe/ZnS core/shell NQD nanophosphors integrated on blue InGaN/GaN LEDs.  相似文献   

20.
白光LED极限流明效率的计算   总被引:3,自引:2,他引:1       下载免费PDF全文
对蓝光芯片加黄色荧光粉制备白光LED方法的流明效率进行了理论计算。根据光度学原理,我们考虑到视觉函数V(λ)的修正,以色坐标为x=0.325,y=0.332,显色指数为81.5,色温为5 914 K的白光LED发光光谱为依据,计算了白光LED流明效率的理论极限:得出每瓦白光LED辐射光功率产生的光通量为298.7 lm,白光LED发射的总光子数为2.7×1018。在理想情况下,注入一个电子-孔穴对产生一个蓝光光子,设荧光粉的量子效率为1,因此,注入的电子-孔穴对数亦等于白光光子数,进而计算出白光LED每辐射1 W的光功率所需的电功率为1.51 W,上述白光LED发光光谱对应的白光LED的电-光转换的理论极限流明效率为197.8 lm/W。  相似文献   

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