Cao Jin, Zhou Jie, Xie Jing-weil, Chen An-ping, Zhang Xuel, Yin Lu-qiao, Zhang Jian-hua
Guang Pu Xue Yu Guang Pu Fen Xi. 2016 Feb;36(2):349-54.
In accordance with the one-step synthesis, in this paper, we synthesized 510, 550 and 630 nm three emission peaks CdSe/ZnS core-shell quantum dots with high stability and high quantum yield whose quantum yield were 82%, 98% and 97%. We used the quantum dot material to replace the phosphor material, and mixed QDs with the silicone uniformly, then dispersed the QDs/silicone composites onto the blue InGaN LEDs to fabricate the QDs-WLEDs. By successively adding different colors of quantum dots for the preparation of quantum dot light converting layer, We investigated that how does the ratio of the three kind of quantum dots whose peaks were 510, 550 and 630 nm effect on the properties of the white LED devices. This paper also studied the mechanism of energy conversion between different colors of quantum dots. We also utilized the mechanism that the quantum dots effect on the white spectrum and color coordinates; we got the results of the optimization of the white device and the ratio of three-color quantum dots. The results show that when the quantum dot ratio is 24:7:10, white LED devices with high stability and high efficiency can be obtained, in the current range of 20-200 mA, the range of color temperature is from 4 607 to 5 920 K, the CIE-1931 coordinates is from (0.355 1,0.348 3) to (0.323 4, 0.336 1), the color rendering index is from 77. 6 to 84. 2, and the highest power efficiency of the devices achieves to 31.69 lm · W⁻¹ @ 20 mA. In addition, in order to further investigate the reason of stable device performance, We studied the effects of time, temperature, UV treatment on the stability of CdSe/ZnS QDs/silicone light conversion material, the results show that the excellent stability of the devices attributes to the stability of the one-step synthesis of core-shell structure of the quantum dot material, the final optimized device is a low-power high-quality white light source and the device has good application prospects in the field of standard white light source which can truly perceive the color and original features of objects.
按照一步合成法,本文合成了具有高稳定性和高量子产率的510、550和630 nm三个发射峰的CdSe/ZnS核壳量子点,其量子产率分别为82%、98%和97%。我们使用量子点材料替代荧光粉材料,并将量子点与硅胶均匀混合,然后将量子点/硅胶复合材料分散到蓝色InGaN发光二极管上以制备量子点白光发光二极管。通过依次添加不同颜色的量子点来制备量子点光转换层,我们研究了峰值为510、550和630 nm的三种量子点的比例对白光发光二极管器件性能的影响。本文还研究了不同颜色量子点之间的能量转换机制。我们还利用了量子点对白色光谱和色坐标的影响机制;得到了白光器件和三色量子点比例优化的结果。结果表明,当量子点比例为24:7:10时,可获得具有高稳定性和高效率的白光发光二极管器件,在20 - 200 mA的电流范围内,色温范围为4607至5920 K,CIE - 1931坐标从(0.355 1,0.348 3)到(0.323 4, 0.336 1),显色指数从77.6到84.2,器件的最高功率效率在20 mA时达到31.69 lm·W⁻¹。此外,为了进一步研究器件性能稳定的原因,我们研究了时间、温度、紫外线处理对CdSe/ZnS量子点/硅胶光转换材料稳定性的影响,结果表明器件的优异稳定性归因于量子点材料核壳结构一步合成的稳定性,最终优化后的器件是一种低功耗高质量的白光源,该器件在能够真实感知物体颜色和原始特征的标准白光源领域具有良好的应用前景。