The above and other aspects, features and other advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
Exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings.
As shown in
The package substrate 11 has first and second wiring structures 12a and 12b formed of conductive vias, respectively, in the substrate 11. The light emitting diode 15 mounted on the package substrate 11 may be connected to the first and second wiring structures 12a and 12b by a known method of connection such as wire bonding.
The light emitting diode package 10 includes a transparent cover 18 mounted above a mounting area of the package substrate. The transparent cover 18 may be a lens as shown and has a structure sealing a space surrounding the area on which the light emitting diode 15 is mounted.
As described above, the transparent cover 18 provides the sealed space in which the light emitting diode 15 is disposed. A transparent fluid 17 for adjusting a refractive index is filled in the sealed space formed by the transparent cover 18. The transparent fluid 17 has electric insulating properties so as not to affect the electric connection structure.
In addition, the transparent fluid 17 employed in the present embodiment has a refractive index value between a refractive index value of a material forming the light emitting diode 15 and a refractive index of the atmosphere, thereby increasing an amount of light extracted out of the light emitting diode 15. For example, in a case where the light emitting diode is formed of GaN, since GaN has a refractive index of about 2.4, the transparent fluid 17 is formed of a material having a refractive index lower than 2.4.
The transparent fluid 17 satisfying the conditions for electric insulating properties and adjustment of the refractive index may be, but not limited to, a silicon-based oil.
Having fluidity, the transparent fluid 17 used for adjusting the refractive index may form an eddy, effectively radiating the heat generated from the surface of the light emitting diode. Also, the transparent fluid 15 maintains a close contact with the surface of the light emitting diode regardless of the shape and the surface structure of the light emitting diode to adjust the refractive index, thereby effectively improving the light extraction efficiency.
In particular, the transparent fluid for adjusting the refractive index may be usefully employed to one of a hexagonal pyramid-shaped light emitting diode and a light emitting diode having an uneven surface structure to thereby further improve light extraction efficiency.
As shown in
Also, a dielectric layer 24 having a window area W is formed on the first conductivity type lower nitride layer 22a. Lateral growth using the dielectric layer 24 is applied to grow a first conductivity type upper nitride layer 22b, an active layer 25 and a second conductivity type nitride layer 26 in the window area W. Thereby, the nitride layers 22b, 25 and 26 form a hexagonal pyramid light emitting structure in the window area W.
In addition, a transparent conductive film 27 and a second electrode 29 are formed on the second conductivity type nitride layer 26 of the hexagonal pyramid light emitting structure, and a first electrode 28 is formed on a portion of the first conductivity type lower nitride layer 22a exposed by etching a portion of the dielectric layer 24.
In such a hexagonal pyramid-shaped structure, even if a vacuuming process performed during a process of applying and curing a resin may not completely prevent generation of air bubbles, which may adversely affect light extraction. However, according to the present invention, the transparent fluid having electric insulating properties is employed to provide a condition of a lower refractive index than that of the material forming the light emitting diode, thereby effectively improving light extraction efficiency.
A dielectric layer 34 with a plurality of window areas formed therethrough is formed on the first conductivity type lower nitride layer 32. A first conductivity type upper nitride layer 32b, an active layer 35 and a second conductivity type nitride layer 36 are sequentially grown on areas on the first conductivity type lower nitride layer 32a exposed by the respective window areas, thereby providing a plurality of hexagonal pyramid light emitting structures.
In addition, a first electrode 38 is formed on an upper surface of the first conductivity type lower nitride semiconductor layer 32a. A light-transmitting conductive layer 37 is formed on the second conductivity type nitride semiconductor layer 36, and a second electrode 39 is formed on an upper surface of the light transmitting conductive layer 37.
As described above, the light emitting diode structure having the plurality of pyramid-shaped structures has a severely irregular surface shape. In this case, even if a curable liquid resin is used to form a layer for adjusting the refractive index, drawbacks such as light scattering due to air bubbles and the like may be more severe.
However, when a transparent fluid such as a silicon oil is employed according to the present invention, an entirely dense structure for adjusting the refractive index may be provided and the heat generated from the light emitting device may be effectively radiated through eddy effects of the fluid.
Referring to
According to the present embodiment, the wiring structure formed on the lower substrate 41a may include lead frames 42a and 42b formed on an upper surface thereof, bonding pads 43a and 43b formed on a lower surface thereof, and conductive vias 44a and 44b connecting the lead frames 42a and 42b with the bonding pads 43a and 43b, respectively. The cavity defining a mounting space is formed in the upper substrate 41b. The sidewall of the cavity is an upwardly inclined surface, which may be utilized as a reflecting surface.
The light emitting device 45 is mounted in the mounting space defined by the cavity and connected to the lead frames 42a and 42b. A transparent cover 48 is mounted above the upper substrate 41b, in a shape covering the cavity structure. The transparent cover 48 may be firmly attached by a known means to hermetically seal the space in which the light emitting diode 45 is mounted. The transparent cover 48 may be in a lens structure having a hemispheric shape as shown in
In addition, the transparent cover 48 may include a phosphor. The phosphor may be provided in a powder form included in the transparent cover, but also a phosphor film 49 may be formed on an outer surface of the transparent cover as in this embodiment. Of course, the phosphor film 49 may be also formed on an inner surface of the transparent cover 48 if necessary.
A transparent fluid 47 having electric insulating properties is filled in the space hermetically sealed by the transparent cover 48. In order to increase light extraction efficiency, the transparent fluid 47 may have a refractive index value between a refractive index value of the material forming the light emitting diode 45 and a refractive index value of the external atmosphere. Therefore, the amount of light extracted out of the light emitting diode 45 is increased. Although not limiting, a silicon-based oil may be used for the transparent fluid 17 satisfying the condition for the electric insulating properties and adjustment of the refractive index.
Thereby, even if the hexagonal pyramid shaped light emitting diode has a severely irregular surface, the medium for adjusting the refractive index employs a fluid having a large fluidity like liquid, which adjusts the refractive index while maintaining a close contact with the surface of the light emitting diode, thereby effectively improving light extraction property.
According to the present invention as set forth above, a fluid having electric insulating properties and high fluidity is employed for a medium for adjusting a refractive index, thereby effectively improving light extraction efficiency of a light emitting device having a light emitting diode with various surface structures and uneven surface structures.
While the present invention has been shown and described in connection with the exemplary embodiments, it will be apparent to those skilled in the art that modifications and variations may be made without departing from the spirit and scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
10-2006-98964 | Oct 2006 | KR | national |