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Analysis of photoluminescence mechanisms and thermal quenching effects for multicolor phosphor films used in high color rendering white LEDs

机译:高色渲染白光膜多色磷光体膜的光致发光机制和热淬火效果分析

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In order to prepare phosphor-converted white LEDs with high color rendering index (CRI) and high luminous efficiency, the multicolor phosphor film by mixing more than two monochromatic phosphor powders in a silicone matrix is widely used. But usually its photoluminescence mechanism can't be explained by a simple superposition of each spectra emitted by individual monochromatic phosphors. Additionally, as being close to LED chips, the phosphor film is always suffered under high temperature when LED operates. Therefore, this study analyzes the thermal quenching effects of multicolor phosphor films prepared by mixing the Garnets, Silicates and Nitrides based phosphors in silicone. And their photoluminescence mechanisms are investigated by modeling of spectral power distributions (SPDs) for the prepared white LED chip scale packages (CSPs) through optical simulations with LightTools software. Through analyzing the features of emission spectra (e.g. emission peak, peak wavelength and full widths at half maximum (FWHMs)) from prepared multicolor phosphor films, the results show that the heat treatment leads to a significant decrease of luminous intensity, all peak wavelengths shift to the short-wavelength range and all FWHMs become narrow. However, these results are not simply the superposition of each thermal quenching effect of monochromatic phosphors and this nonlinearity is supposed to be caused by the reabsorption of luminescence between phosphor particles and multiple conversions among them.
机译:为了制备具有高色渲染指数(CRI)和高发光效率的磷光体转换的白光LED,通过在硅氧烷基质中混合多于两个单色磷光体粉末的多色荧光体膜被广泛使用。但通常不能通过单色单色磷光体发出的每个光谱的简单叠加来解释其光致发光机制。另外,由于靠近LED芯片,当LED操作时,磷光体薄膜总是在高温下遭受。因此,该研究分析了通过在硅树脂中混合装饰品,硅酸盐和氮化物基磷光体制备的多色磷光体膜的热淬火效应。通过用LightOols软件的光学模拟来研究通过使用光学模拟的光谱功率分布(SPD)的光谱功率分布(SPD)来研究它们的光致发光机制。通过分析来自制备的多色荧光体薄膜的发射光谱(例如发射峰值,峰值波长和全宽)的特征,结果表明,热处理导致发光强度的显着降低,所有峰值波长换档短波长范围和所有FWHM都变窄。然而,这些结果不仅仅是单色磷光体的每种热猝灭效应的叠加,并且这种非线性应该是由磷光体颗粒之间的发光和它们之间的多个转换的重吸收引起的。

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