Kang Fengwen, Zhang Yi, Peng Mingying
The China-Germany Research Center for Photonic Materials and Devices, The State Key Laboratory of Luminescent Materials and Devices and Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques, School of Materials Science and Engineering, South China University of Technology , Guangzhou 510641, China.
Inorg Chem. 2015 Feb 16;54(4):1462-73. doi: 10.1021/ic502439k. Epub 2015 Jan 21.
So far, more than 1000 UV converted phosphors have been reported for potential application in white light-emitting diodes (WLEDs), but most of them (e.g., Y2O2S:Eu, YAG:Ce or CaAlSiN3:Eu) suffer from intrinsic problems such as thermal instability, color aging or re-absorption by commixed phosphors in the coating of the devices. In this case, it becomes significant to search a single-phased phosphor, which can efficiently convert UV light to white lights. Herein, we report a promising candidate of a white light emitting X2-type Y2SiO5:Eu(3+),Bi(3+) phosphor, which can be excitable by UV light and address the problems mentioned above. Single Bi(3+)-doped X2-type Y2SiO5 exhibits three discernible emission peaks at ∼355, ∼408, and ∼504 nm, respectively, upon UV excitation due to three types of bismuth emission centers, and their relative intensity depends tightly on the incident excitation wavelength. In this regard, proper selection of excitation wavelength can lead to tunable emissions of Y2SiO5:Bi(3+) between blue and green, which is partially due to the energy transfer among the Bi centers. As a red emission center Eu(3+) is codoped into Y2SiO5:Bi(3+), energy transfer has been confirmed happening from Bi(3+) to Eu(3+) via an electric dipole-dipole (d-d) interaction. Our experiments reveal that it is easily realizable to create the white or tunable emissions by adjusting the Eu(3+) content and the excitation schemes. Moreover, a single-phased white light emission phosphor, X2-type Y1.998SiO5:0.01Eu(3+),0.01 Bi(3+), has been achieved with excellent resistance against thermal quenching and a QE of 78%. At 200 °C, it preserves >90% emission intensity of that at 25 °C. Consequent three time yoyo experiments of heating-cooling prove no occurrence of thermal degradation. A WLED lamp has been successfully fabricated with a CIE chromaticity coordinate (0.3702, 0.2933), color temperature 4756 K, and color rendering index of 65 by applying the phosphor onto a UV LED chip.
到目前为止,已有1000多种紫外光转换荧光粉被报道可用于白光发光二极管(WLED)的潜在应用中,但其中大多数(如Y2O2S:Eu、YAG:Ce或CaAlSiN3:Eu)都存在一些固有问题,如热稳定性差、颜色老化或在器件涂层中被混合荧光粉重新吸收等。在这种情况下,寻找一种能将紫外光高效转换为白光的单相荧光粉变得至关重要。在此,我们报道了一种有前景的白色发光X2型Y2SiO5:Eu(3+)、Bi(3+)荧光粉候选物,它可被紫外光激发并解决上述问题。单掺Bi(3+)的X2型Y2SiO5在紫外光激发下分别在约355、约408和约504 nm处呈现三个可分辨的发射峰,这归因于三种类型的铋发射中心,且它们的相对强度紧密依赖于入射激发波长。在这方面,适当选择激发波长可导致Y2SiO5:Bi(3+)在蓝色和绿色之间实现可调谐发射,这部分归因于铋中心之间的能量转移。当作为红色发射中心的Eu(3+)共掺到Y2SiO5:Bi(3+)中时,已证实通过电偶极 - 偶极(d - d)相互作用发生了从Bi(3+)到Eu(3+)的能量转移。我们的实验表明,通过调整Eu(3+)含量和激发方案很容易实现白色或可调谐发射。此外,已制备出一种单相白色发光荧光粉X2型Y1.998SiO5:0.01Eu(3+)、0.01Bi(3+),它具有优异的抗热猝灭性能,量子效率为78%。在200℃时,它保留了在25℃时发射强度的90%以上。随后进行的三次加热 - 冷却循环实验证明没有发生热降解。通过将该荧光粉应用于紫外LED芯片,成功制备出一种WLED灯,其CIE色度坐标为(0.3702, 0.2933),色温为4756 K,显色指数为65。