1. Field of the Invention
The present invention is related to a fluorescence material applied to light emitting diode (LED) devices, and more particularly, to a structure of a fluorescence material.
2. Description of the Prior Art
It is an important objective for the illumination source technology field with actively researching and developing in this century to utilize LED devices for producing white light that is similar to the light color distribution of sunlight in order to substantially replace conventional white light illumination devices, such as fluorescent lamps. Currently, most of global package technology researchers of white light LED with single chip have working for develop blue light LED chips with wavelength of 440-460 nanometers (nm) and yttrium aluminum garnet (YAG) fluorescence powder, which can be excited by the blue light LED chip, for being mixed and packaged to produce white light. There is no definite operation method standard of packaging fluorescence powders in a white light LED package.
Furthermore, the technology of white light package has been widely discussed and researched. Therefore, how to improve the extraction efficiency of light becomes an important issue. For example, surface-roughening, arrangement of photonic crystal, and design of package structure are verified methods for effectively raising the extraction efficiency of light. In addition, the structure disposition of fluorescence powder layer has been valued gradually.
However, most of the researches have been emphasized on design of the whole structure of LED devices, or the coating disposition or structure variation of the fluorescence powder layer, and the research or discussion of fluorescence powder particle itself is very seldom.
In fact, the surface structure and size of the fluorescence powder particle do influence in the extraction efficiency of light. Therefore, to provide a fluorescence material for improving the extraction efficiency of light through the design of the particle structure of fluorescence material is essential for the manufacturers.
It is a primary objective of the present invention to provide a fluorescence material whose particle structure has an advantage of improving the extraction efficiency of light of the LED device, so as to solve the technical problem in the prior art.
To achieve the above-mentioned goal, a fluorescence material is provided, wherein a particle diameter of the crystal area of the particle of the fluorescence material is defined as dc, and a range of the particle diameter meets the following equation: 1 0 nm≧dc≧10 nm.
To achieve the above-mentioned goal, a fluorescence material is provided, wherein the ratio of the long axis to the short axis of the particle of the fluorescence material is defined as ratio r, and the ratio r has a range of: 3≧r≧1.
To achieve the above-mentioned goal, a fluorescence material particle having a geometrical etching layer is provided.
Preferably, said etching layer has at least a shape of taper, rectangular bar, round, or cavity.
Preferably, said fluorescence powder is coated with at least a layer or sheet of coating medium on the outer surface of said fluorescence powder.
Preferably, an encapsulation is disposed out of said coating medium.
Preferably, the refractive index of said fluorescence material is larger than or equal to the refractive index of the coating medium, and the refractive index of the coating medium is larger than or equal to the refractive index of the encapsulation.
Preferably, the at least one layer of the coating medium has refractive indexes defined as n1, n2, . . . nn from the inner side to the outer side, wherein the refractive indexes of the coating medium meet the following equation: the refractive index of the fluorescence material ≧n1≧n2 . . . ≧nn≧the refractive index of the encapsulation.
The fluorescence material applied to the LED package with the above-mentioned structure can improve the extraction efficiency of light.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
a is a schematic diagram of the structure of the fluorescence powder particle of the present invention, wherein the surface of the particle has triangular tapers.
b is a schematic diagram of the structure of the fluorescence powder particle of the present invention, wherein the surface of the fluorescence powder particle has rectangular bars.
c is a schematic diagram of the structure of the fluorescence powder particle of the present invention, wherein the surface of the fluorescence powder particle has spheres.
d is a schematic diagram of the structure of the fluorescence powder particle of the present invention, wherein the surface of the fluorescence powder particle has cavities.
a is a schematic diagram of an LED package structure, wherein the metal lead frame is omitted.
b is a schematic diagram of another LED package structure, wherein the metal lead frame is omitted.
a is an X-ray diffraction diagram of a sample of YAG fluorescence powder with a particle diameter of 6.55 micrometers (μm).
b is an X-ray diffraction diagram of a sample of YAG fluorescence powder with a particle diameter of 12.89 μm.
c is a photoluminescence spectrum diagram of the samples shown in
A further description of the present invention is in the following specification with reference to the figures.
The above-mentioned and other technology content, charicteristics, and functionalities of the present invention will be clear illustrated in the following preferable embodiments with reference to the figures.
Noted that the similar elements of the present invention are labeled with the same numerals in the following specification.
a-3b are schematic diagrams of the package structure of an LED respectively. Referring to
The light-emitting chip 1 is capable of emitting blue light with wavelength of 420-460 nm or ultraviolet with wavelength of 350 -410 nm, such that the fluorescence powder layer 4 is excited by the blue light to produce yellow light, mixing with the blue light or ultraviolet so as to produce white light emitting out of the LED package 10.
Please refer to
The samples shown in
d=0.9λ/B·cos θB
In this equation, “d” represents the particle diameter of the crystal area (or called “crystal particle diameter”) which is going to be figured out, “λ” represents the wavelength of the incident light, which may be about 1.5405981 Å herein, “B” represents the full-width half maximum (FWHM) of the diffraction strength, and “θB” represents the counted diffraction angle.
According to the above-mentioned Scherrer Equation, the crystal particle diameter dc of the fluorescence powder particle of the sample shown in
Please refer to
The refractive index of YAG fluorescence powder has a measured value as about 1.8, and the refractive index of the used encapsulation may be varied. Taking silicon, with refractive index of about 1.5, as an example, when light enters the fluorescence powder from outside, total reflection will not occur because light passes from the sparse medium to the dense medium. However, when the energy transformation of the incident light 70 occurs and it is emitted from the fluorescence powder, light will pass through from the dense medium to the sparse medium such that total reflection will occur. As a result, the particle surface of the present invention fluorescence powder is roughened or has some particular structures so as to reduce the total reflection appearance and improve light emitting ratio.
Please refer to
In addition, according to the present invention, one layer (or sheet) or multi-layer of coating medium with different refractive indexes may be coated on the out surface of the fluorescence powder, wherein the refractive index n of the one-layer or multi-layer of coating medium is substantially in a range from the refractive index value 5 of fluorescence powder to the refractive index value 3 of encapsulation. For example, when the above-mentioned YAG fluorescence powder and silicon encapsulation are adopted, the refractive index n of the coating medium has the limitation: 1.8≧Page 9 of 13 n≧1.5. When the YAG fluorescence powder is coated with a plurality of layers of coating medium, the refractive indexes n1, n2 . . . nn representing the refractive indexes of the different layers of coating medium from the fluorescence powder to the encapsulation in sequence preferably meet the following equation: 1.8≧n1≧n2 . . . ≧nn≧1.5.
With reference to
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention.
Number | Date | Country | Kind |
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200810030113.0 | Aug 2008 | CN | national |