预成型硅透镜LED晶圆级封装用远端荧光粉的多层点胶

J. Lo, S. Lee, Xungao Guo, Huishan Zhao
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引用次数: 2

摘要

荧光粉转换LED是固态灯具中常用的白光光源。在封装过程中,荧光粉沉积是一个关键步骤,它控制着led的整体光学性能。荧光粉沉积方法有很多种,其中分散点胶法和保形镀膜法应用最为广泛。在这两种方法中,荧光粉材料直接应用于LED芯片的顶部。荧光粉材料在工作过程中被LED芯片加热。荧光粉材料的性能在很大程度上取决于它们的温度。发射效率随温度的升高而降低。较高的荧光粉温度也可能带来可靠性问题。采用远程荧光粉方法可以改善这种情况。一些高功率led封装使用硅透镜来提高光提取效率。使用常规点胶工艺难以在凸表面上涂抹远端荧光粉层。本文提出了一种新颖的硅透镜封装多层远端荧光粉沉积方法。将荧光粉浆按步骤直接涂在硅胶透镜上。泥浆在圆屋顶上流动、扩散,到了台阶边上就停了下来。独特的台阶结构,防止了磷光料浆溢出。制备了具有多层远端荧光粉层的封装材料。每一层的荧光粉材料不同。该方法为在一个封装中采用不同类型的荧光粉材料,从而实现设计的光学性能提供了一个简单灵活的平台。
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Multilayer dispensing of remote phosphor for LED wafer level packaging with pre-formed silicone lens
Phosphor converted LED is commonly used as the white light source in solid state luminaires. Among the packaging processes involved, phosphor deposition is a critical step, which controls the overall optical performance of LEDs. There are several phosphor deposition methods, among which disperse dispensing and conformal coating methods are widely used. In these two methods, phosphor materials are applied directly on top of the LED chip. The phosphor materials are heated up by the LED chip during the operation. The behavior of phosphor materials highly depends on their temperature. The emission efficiency decreases as temperature increases. High phosphor temperature may also introduce reliability problems. The situation can be improved by adopting a remote phosphor method. Some high power LEDs packages utilize silicone lens to increase the light extraction efficiency. It is difficult to apply a remote phosphor layer on the convex surface using a regular dispensing process. In this paper, an innovative multilayer remote phosphor deposition method is proposed for the packages with silicone lens. Phosphor slurry was dispensed directly on the silicone lens with steps. The slurry flowed and spread on the dome, and stopped when it reached the edge of the step. The unique step feature stopped the phosphor slurry from overflowing. A package with multilayer remote phosphor layer was fabricated. The phosphor material in each layer was different. This method provides a simple and flexible platform for adopting different types of phosphor materials in one package, and hence to achieve the designed optical performance.
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