OPTOELECTRONIC DEVICE AND METHOD FOR MANUFACTURING THE SAME
An optoelectronic device includes a substrate; a first semiconductor layer having a first conductivity-type impurity formed on the substrate, an active layer formed on the first semiconductor layer, and a second semiconductor layer having a second conductivity-type impurity formed on the active layer; and a hollow component formed inside the active layer or the second semiconductor layer, wherein a material of the active layer or a material of the second semiconductor layer comprises group IIIA nitride semiconductor.
This application is a continuation application of U.S. patent application Ser. No. 13/967,193, entitled “OPTOELECTRONIC DEVICE AND METHOD FOR MANUFACTURING THE SAME”, filed on Aug. 14, 2013, now granted, which is a continuation-in-part of U.S. patent application Ser. No. 13/225,117, entitled “OPTOELECTRONIC DEVICE AND METHOD FOR MANUFACTURING THE SAME”, filed Sep. 2, 2011, now granted, which is a continuation-in-part of Ser. No. 13/178,323, files on Jul. 7, 2011, now granted the entire content of which is incorporated herein by reference in its entirety.
BACKGROUND1. Technical Field
The present disclosure relates to an optoelectronic device having a transition stack formed between the semiconductor layer and the substrate.
2. Description of the Related Art
The light radiation theory of light emitting diode (LED) is to generate light from the energy released by the electron moving between the n-type semiconductor and the p-type semiconductor. Because the light radiation theory of LED is different from the incandescent light which heats the filament, the LED is called a “cold” light source. Moreover, the LED is more sustainable, longevous, light and handy, and less power consumption, therefore it is considered as a new light source for the illumination markets. The LED applies to various applications like the traffic signal, backlight module, street light, and medical instruments, and is gradually replacing the traditional lighting sources.
Generally, the light extraction efficiency depends on the internal quantum efficiency and light extraction efficiency. The internal quantum efficiency can be defined as the opto-electrical conversion efficiency in the LED.
However, as shown in the
An optoelectronic device includes: a substrate; an epitaxial stack including a first semiconductor layer having a first conductivity-type impurity, an active layer, and a second semiconductor layer having a second conductivity-type impurity formed on the substrate; and a hollow component formed inside the active layer or the second semiconductor layer, wherein the layer with the hollow component is doped with an additional impurity.
A method of fabricating an optoelectronic device, includes: providing a substrate; forming a first semiconductor layer having a first conductivity-type impurity on the substrate; forming an active layer on the first semiconductor layer; forming a second semiconductor layer having a second conductivity-type impurity; doping an additional impurity into at least one of the second semiconductor layer and the active layer; and forming a hollow component inside the second semiconductor layer and/or the active layer.
The accompanying drawings are included to provide easy understanding of the application, and are incorporated herein and constitute a part of this specification. The drawings illustrate embodiments of the application and, together with the description, serve to illustrate the principles of the application.
Reference is made in detail to the preferred embodiments of the present application, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
The present disclosure describes an optoelectronic device and a method of fabricating the optoelectronic device. In order to have a thorough understanding of the present disclosure, please refer to the following description and the illustrations.
In this embodiment, the material of the first transition layer 1021 contains at least one element selected from the group consisting of Al, Ga, In, As, P, and N, such as GaN or AlGaInP. In one embodiment, the first transition layer 1021 can be an n-type doped layer; the doping concentration can be 1E15-1E19 cm−3, 1E16-1E19 cm−3, 1E17-1E19 cm−3, 1E18-1E19 cm−3, 5×1E18-1E19 cm−3, 5×1E17-1E19 cm−3, or 5×1E17-1E18 cm−3.
Following, as
The methods include: 1) Wet etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, ethylene glycol solution, or their mixture;
2) Electrochemical etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, an ethylene glycol solution, or their mixture; or
3) Dry etching such as inductive coupling plasma (ICP), reactive ion etch (RIE) by a gas containing at least one of HCl, Cl2, SF6, H2, BCl3, and CH4.
In this embodiment, the width W of the hollow component is defined as the largest size of the hollow component p1 perpendicular to the normal direction N2 of the first transition layer 1021. The width W of the hollow component p1 inside the first transition layer 1021 can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm. In one embodiment, the width W of the hollow component p1 close to the substrate is larger than the width of the hollow component p1 close to the second transition layer 1022.
The average distance D between any two of the hollow components p1 can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm.
In another embodiment, the plurality of hollow components p1 inside the first transition layer 1021 forms a regular array structure. The average width W of the plurality of hollow components p1 can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm.
The porosity Φ of the plurality of the hollow components p1 is defined as the total volume of the hollow components VV divided by the overall volume VT of the first transition layer 1021
In this embodiment, the porosity Φ can be 5%-90%, 10%-90%, 20%-90%, 30%-90%, 40%-90%, 50%-90%, 60%-90%, 70%-90% or 80%-90%.
Following, as
Following, as
In one embodiment, as shown in
In one embodiment, the optoelectronic device 100′ can be bonded on a submount to form a flip-chip structure.
The plurality of the hollow components inside the first transition layer 1021 having a refractive index. Because of the difference of the refractive index of the plurality of the hollow components and the semiconductor layer, for example, the refractive index of the semiconductor layer is 2-3, and the refractive index of air is 1 so the light transmitting into the plurality of the hollow components changes its emitting direction to outside the optoelectronic device and increases the light emitting efficiency. Besides, the plurality of the hollow components can be a scattering center to change the direction of the photon and decrease the total reflection. By increasing the porosity of the hollow component, the effect mentioned above is increasing.
The second transition layer 1022 can be an unintentional doped layer or an undoped layer. The second transition layer 1022 is laterally grown and coalesced on the first transition layer 1021 by decreasing the volume of the hollow component formed between the interfaces of the first transition layer 1021 and the second transition layer 1022 and continues to epitaxial grow vertically. The second transition layer 1022 can avoid the absorption of the doping material such as Si or Mg into the hollow component from the doped n-type or p-type semiconductor layer, and the transmittance and the light extraction efficiency is therefore increased.
As
Following, as
The etching methods include: 1) Wet etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, ethylene glycol solution, or their mixture;
2) Electrochemical etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, an ethylene glycol solution, or their mixture; or
3) Dry etching such as inductive coupling plasma (ICP), reactive ion etch (RIE) by a gas containing at least one of HCl, Cl2, SF6, H2, BCl3, and CH4.
Following, as
A suitable porosity may be related to the thickness of the plurality of the reflecting islands 110′. In order to provide the same amount of scattering, a thicker reflecting island 110′ may be less porous than a thinner reflecting island 110′. The light rays reflected and scattered by the plurality of the reflecting islands 110′ have a Lambertian radiation pattern with maximum intensity directed perpendicular to surface.
As
Finally, as
In another embodiment of this application, as
In another embodiment of this application, as
As
As
As
In this embodiment, the second conductivity semiconductor layer 904 is co-doped with p-type impurity and n-type impurity. Each of the doping concentration of the first impurity or the second impurity is lower than 1022 cm−3. In one embodiment, the doping concentration is 1E15-1E19 cm−3, 1E16-1E19 cm−3, 1E17-1E19 cm−3, 1E18-1E19 cm−3, 5×1E18-1E19 cm−3, 5×1E17-1E19 cm−3, or 5×1E17-1E18 cm−3.
The impurity of p-type doping comprises an element selected from group IIA such as Be, Mg, Ca. The impurity of n-type doping comprises an element selected from group IVA and VIA such as Si, Ge, O, S, Te. In one embodiment, the n-type doping is performed during or after forming the second semiconductor layer 904.
In one embodiment, the method for doping the n-type impurity comprises ion implantation or mixing the impurity during the epitaxial growth of the second semiconductor layer 904. The doping temperature for doping the n-type impurity is between 800 to 1200° C. In this embodiment, the material of the first conductivity semiconductor layer 902, the active layer 903, and the second conductivity semiconductor layer 904 can be group IIIA nitride semiconductor, group IIIA phosphide semiconductor, GaN, AlGaInP or any other suitable materials.
Following, the second conductivity semiconductor layer 904 can be etched by the following method to form at least one first hollow component p in the second conductivity semiconductor layer 904. The first hollow component p can be pore, void, bore, pinhole, cavity, or a mesh or porous structure linked by at least two first hollow components p to form an optoelectronic device 500.
The methods include: 1) Wet etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, ethylene glycol solution or their mixture;
2) Electrochemical etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, an ethylene glycol solution or their mixture;
3) Lateral electrochemical etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, an ethylene glycol solution or their mixture; or
4) Dry etching such as inductive coupling plasma (ICP), reactive ion etch (RIE) by a gas containing at least one of HCl, Cl2, SF6, H2, BCl3 and CH4.
In one embodiment, when the etching is performed with the electrochemical etching, the n-type impurity is chemically more reactive to the aqueous solution of the electrochemical etching than the p-type impurity. In another embodiment, the electrochemical etching step consumes a portion of the n-type impurity such that the concentration of the n-type impurity is decreased after the electrochemical etching. In one embodiment, the n-type impurity is doped at a depth from an upper surface of the second semiconductor layer 904, and the hollow component is formed about the same as the depth from the upper surface of the second semiconductor layer 904.
In this embodiment, the width of the first hollow component p is defined as the largest size of the first hollow component p perpendicular with the normal line direction N of the substrate 901.
In one embodiment, the first hollow component p can be pore, void, bore, pinhole, cavity, and the width of the first hollow component p can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm.
In another embodiment, the first hollow components p can be multiple voids or porous structure. The average width of the plurality of the first hollow components p can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm. In another embodiment, the average distance D of the plurality of the first hollow components p can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm.
The porosity Φ of the plurality of the first hollow components p can be defined as the total volume of the first hollow component VV divided by the overall volume VT of the second semiconductor layer 904
In one embodiment, the porosity Φ of the plurality of the first hollow components p can be 5%-90%, 10%-90%, 20%-90%, 30%-90%, 40%-90%, 50%-90%, 60%-90%, 70%-90% or 80%-90%.
In one embodiment, the first hollow components p can be a regular array structure. For example, the plurality of the first hollow components p has the same size and forms a first photonic crystal structure to enhance the reflection and scattering of light. The plurality of the first hollow components p can be distributed at about a same level of height.
In one embodiment, the optoelectronic device 500 can be bonded on a submount (not shown) to form a flip-chip structure and the first hollow components p are between the submount and the substrate 901 for reflecting a light emitted from the active layer 903 toward the substrate 901.
The plurality of the first hollow components p inside the second semiconductor layer 904 are empty spaces or cavities having a refractive index and can act as an air lens. Because of the difference of the refractive index of the plurality of the first hollow components p and the second semiconductor layer 904, for example, the refractive index of the second semiconductor layer 904 is 2-3, and the refractive index of air is 1 so the light transmitting into the plurality of first hollow components p change its emitting direction to outside the optoelectronic device 500 and increases the light emitting efficiency. Besides, the plurality of the first hollow components p can be a scattering center to change the direction of the photon and decrease the total reflection.
In another embodiment, as
In this embodiment, active layer 903 is doped with an n-type impurity. The doping concentration of the n-type doping is lower than 1022 cm−3. In one embodiment, the doping concentration is 1E15-1E19 cm−3, 1E16-1E19 cm−3, 1E17-1E19 cm−3, 1E18-1E19 cm−3, 5×1E18-1E19 cm−3, 5×1E17-1E19 cm−3, or 5×1E17-1E18 cm−3. The impurity of n-type doping comprises an element selected from group IVA and VIA such as Si, Ge, O, S, Te, and can be doped during or after forming the active layer 903. The method for doping the n-type impurity comprises ion implantation or mixing the impurity during the epitaxial growth of the active layer 903. The doping temperature for doping the n-type impurity is between 800 to 1200° C.
In this embodiment, the material of the first conductivity semiconductor layer 902, the active layer 903, and the second conductivity semiconductor layer 904 can be group IIIA nitride semiconductor, group IIIA phosphide semiconductor, GaN, AlGaInP or any other suitable materials.
Following, the active layer 903 can be etched by the following method to form at least one second hollow component p′ in the active layer 903. The second hollow component p′ can be pore, void, bore, pinhole, cavity, or a mesh or porous structure linked by at least two first hollow components p to form an optoelectronic device 600.
The methods include: 1) Wet etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, ethylene glycol solution or their mixture;
2) Electrochemical etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, an ethylene glycol solution or their mixture;
3) Lateral electrochemical etching with an aqueous solution of at least one of H2SO4, H3PO4, H2C2O4, HCl, KOH, and NaOH, an ethylene glycol solution or their mixture; or
4) Dry etching such as inductive coupling plasma (ICP), reactive ion etch (RIE) by a gas containing at least one of HCl, Cl2, SF6, H2, BCl3 and CH4.
In one embodiment, when the etching is performed with the electrochemical etching, the electrochemical etching step consumes a portion of the n-type impurity such that the concentration of the n-type impurity is decreased. In one embodiment, the n-type impurity is doped at a depth from an upper surface of the active layer 903, and the second hollow component p′ is formed about the same as the depth from the upper surface of the active layer 903.
In this embodiment, the width of the second hollow component p′ is defined as the largest size of the second hollow component p′ perpendicular with the normal line direction N of the substrate 901.
In one embodiment, the second hollow component p′ can be pore, void, bore, pinhole, cavity, and the width of the second hollow component p′ can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm.
In another embodiment, the second hollow component p′ can be multiple voids or porous structure. The average width of the plurality of the second hollow components p′ can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm. In another embodiment, the average distance D of the plurality of the second hollow components p′ can be 10 nm-2000 nm, 100 nm-2000 nm, 300 nm-2000 nm, 500 nm-2000 nm, 800 nm-2000 nm, 1000 nm-2000 nm, 1300 nm-2000 nm, 1500 nm-2000 nm, or 1800 nm-2000 nm.
The porosity Φ of the plurality of the second hollow components p′ can be defined as the total volume of the second hollow component p′ VV divided by the overall volume VT of the active layer 903
In one embodiment, the porosity Φ of the plurality of the second hollow components p′ can be 5%-90%, 10%-90%, 20%-90%, 30%-90%, 40%-90%, 50%-90%, 60%-90%, 70%-90% or 80%-90%.
In one embodiment, the second hollow component p′ can be a regular array structure. For example, the plurality of second hollow components p′ has the same size and forms a second photonic crystal structure to enhance the reflection and scattering of light. The plurality of the second hollow components p′ can be distributed at about a same level of height. Following, as
The plurality of the second hollow component p′ inside the active layer 903 is empty spaces or cavities having a refractive index and can act as an air lens. Because of the difference of the refractive index of the plurality of the second hollow component p′ and the active layer 903, for example, the refractive index of the active layer 903 is 2-3, and the refractive index of air is 1 so the light transmitting into the plurality of the second hollow component p′ change its emitting direction to outside the optoelectronic device 600 and increases the light emitting efficiency. Besides, the plurality of the second hollow component p′ can be a scattering center to change the direction of the photon and decrease the total reflection.
Specifically, the optoelectronic device 100, 100′, 200, 300, 400, 500, 500′, 600 comprises light-emitting diode (LED), photodiode, photo resister, laser diode, infrared emitter, organic light-emitting diode and solar cell. The substrate 101, 901 can be a growing or carrying base. The material of the substrate 101, 901 comprises an electrically conductive substrate, electrically insulating substrate, transparent substrate, or opaque substrate. The material of the electrically conductive substrate can be metal such as Ge and GaAs, oxide such as LiAlO2 and ZnO, nitrogen compound such as GaN and AlN, phosphide such as InP, silicon compound such as SiC, or Si. The material of the transparent substrate can be chosen from sapphire (Al2O3), LiAlO2, ZnO, GaN, MN, glass, diamond, CVD diamond, diamond-like carbon (DLC), spinel (MgAl2O3), SiOx, or LiGaO2.
The first semiconductor layer 103, 902 and the second semiconductor layer 105, 904 are different in electricity, polarity or dopant, or are the different semiconductor materials used for providing electrons and holes, wherein the semiconductor material can be single semiconductor material layer or multiple semiconductor material layers. The polarity can be chosen from any two of p-type, n-type and i-type. The active layer 102, 903 is disposed between the first semiconductor layer 103, 902 and the second semiconductor layer 105, 904 respectively where the electrical energy and the light energy can be converted or stimulated converted. The devices which can convert or stimulated convert the electrical energy into the light energy can be light-emitting diode, liquid crystal display, and organic light-emitting diode. The devices which can convert or be stimulatively converted the light energy into the electrical energy can be solar cell and optoelectronic diode. The material of the first semiconductor layer 103, 902 the active layer 104, 903 and the second semiconductor layer 105, 904 comprises Ga, Al, In, As, P, N, Si, and the combination thereof such as aluminum gallium indium phosphide (AlGaInP) series material, aluminum gallium indium nitride (AlGaInN) series material and so on.
The optoelectronic device of another embodiment in the application is a light-emitting diode, of which the light spectrum can be adjusted by changing the essentially physical or chemical factor of the single semiconductor material layer or the multiple semiconductor material layers. The material of the single semiconductor material layer or the multiple semiconductor material layers can contain elements selected from Al, Ga, In, P, N, Zn, O, or the combination thereof such as aluminum gallium indium phosphide (AlGaInP) series material, aluminum gallium indium nitride (AlGaInN) series material and so on. The structure of the active layer 103, 902 can be single heterostructure (SH), double heterostructure (DH), double-side double heterostructure (DDH) or multi-quantum well (MQW), wherein the wavelength of the light emitted from the active layer 103, 902 can be changed by adjusting the number of the pairs of MQW.
In one embodiment of the application, a buffer layer (not shown) can be selectively disposed between the substrate 101, 901 and the first semiconductor layer 103, 902. The buffer layer is between the two material systems to transit the material system of the substrate 101, 901 to the material system of the first semiconductor layer 103, 902. For the structure of the light-emitting diode, the buffer layer is used to reduce the crystal mismatch between two materials. On the other hand, the buffer layer comprises a single layer, multiple layers or a structure which comprises two materials or two separated structures. The material of the buffer layer can be selected from organic material, inorganic material, metal or semiconductor material. The structure of the buffer layer can be a reflector layer, a thermally conductive layer, an electrically conductive layer, an ohmic contact layer, an anti-deformation layer, a stress release layer, a bonding layer, a wavelength conversion layer or a mechanically fixing structure. In one embodiment, the material of the buffer layer can be MN or GaN, and the buffer layer can be formed by sputtering or atomic layer deposition (ALD).
A contacting layer (not shown) can be selectively formed on the second semiconductor layer 105, 904. The contacting layer is disposed on the side of the second semiconductor layer 105, 904 away from the active layer 104, 903. Specifically, the contacting layer can be optical layer, electrical layer, or the combination thereof. The optical layer can change the radiation or the light from or entering the active layer 104, 903, wherein the optical layer can change but not limited to the frequency, the wavelength, the intensity, the flux, the efficiency, the color temperature, rendering index, light field, angle of view. The electrical layer can change the value, density, distribution of voltage, resistor, current and capacitance of any two relative sides of the contacting layer. The material of the contacting layer comprises oxide such as conductive oxide, transparent oxide and the oxide with the transparency over 50%, metal such as transparent metal and the metal with transparency over 50%, organic material, inorganic material, fluoresce material, ceramic, semiconductor material and doping semiconductor material. In some applications, the material of the contacting layer can be selected from InTiO, CdSnO, SbSnO, InZnO, ZnAlO or ZnSnO. If the material of the contacting layer is transparent metal, the thickness of the contacting layer is in a range of 0.005 μm˜0.6 μm.
It will be apparent to those having ordinary skill in the art that various modifications and variations can be made to the devices in accordance with the present disclosure without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the present disclosure covers modifications and variations of this disclosure provided they fall within the scope of the following claims and their equivalents.
Although the drawings and the illustrations above are corresponding to the specific embodiments individually, the element, the practicing method, the designing principle, and the technical theory can be referred, exchanged, incorporated, collocated, coordinated except they are conflicted, incompatible, or hard to be put into practice together.
Although the present application has been explained above, it is not the limitation of the range, the sequence in practice, the material in practice, or the method in practice. Any modification or decoration for present application is not detached from the spirit and the range of such.
Claims
1. An optoelectronic device comprising:
- a substrate;
- a first semiconductor layer having a first conductivity-type impurity formed on the substrate,
- an active layer formed on the first semiconductor layer;
- a second semiconductor layer having a second conductivity-type impurity formed on the active layer; and
- a hollow component formed inside the active layer or the second semiconductor layer;
- wherein a material of the active layer or a material of the second semiconductor layer comprises group IIIA nitride semiconductor.
2. The optoelectronic device of claim 1, wherein the layer with the hollow component is doped with an additional impurity, and the additional impurity is the first conductivity-type impurity.
3. The optoelectronic device of claim 1, further comprising a plurality of hollow components formed inside the active layer or the second semiconductor layer, wherein the width of one of the plurality of hollow components is between 10 nm and 2000 nm and/or the porosity of the plurality of hollow components is between 5% and 90%.
4. The optoelectronic device of claim 1, wherein the active layer or the second semiconductor layer comprises at least one element selected from the group consisting of Al, Ga, and In.
5. The optoelectronic device of claim 2, wherein the second conductivity-type impurity comprise an element selected from group IIA and the additional impurity and the first conductivity-type impurity comprises an element selected from groups IVA and VIA.
6. The optoelectronic device of claim 2, wherein the doping concentration of the additional impurity is between 5E15 and 1E19 cm−3.
7. The optoelectronic device of claim 1, wherein the upper surface of the second semiconductor layer has a plurality of depressions and a portion of the hollow component are exposed at sidewalls of the plurality of depressions.
8. The optoelectronic device of claim 3, wherein the plurality of hollow components is distributed at about a same level of height.
9. The optoelectronic device of claim 1, further comprising a submount, wherein the hollow component is between the submount and the substrate for reflecting a light emitted from the active layer toward the substrate.
10. A method of fabricating an optoelectronic device, comprising:
- providing a substrate;
- forming a first semiconductor layer having a first conductivity-type impurity on the substrate;
- forming an active layer on the first semiconductor layer;
- forming a second semiconductor layer having a second conductivity-type impurity; and
- forming a hollow component inside the second semiconductor layer and/or the active layer;
- wherein a material of the active layer or a material of the second semiconductor layer comprises group IIIA nitride semiconductor.
11. The method of fabricating an optoelectronic device of claim 10, further comprising:
- doping an additional impurity into the second semiconductor layer and/or the active layer.
12. The method of fabricating the optoelectronic device of claim 11, wherein the method for forming the hollow component comprises electrochemical etching the second semiconductor layer and/or the active layer.
13. The method of fabricating the optoelectronic device of claim 12, wherein the electrochemical etching is performed with an aqueous solution comprising one solution selected from H2SO4, H3PO4, H2C2O4, HCl, KOH, NaOH, ethylene glycol solution, and their mixture.
14. The method of fabricating an optoelectronic device of claim 11, wherein the second conductivity-type impurity comprise an element selected from group IIA, the additional impurity and the first conductivity-type impurity comprises an element selected from groups IVA and VIA, or the active layer or the second semiconductor layer comprises an element selected from the group consisting of Al, Ga, and In.
15. The method of fabricating an optoelectronic device of claim 13, wherein the additional impurity is chemically more reactive to the aqueous solution of the electrochemical etching than the second conductivity-type impurity.
16. The method of fabricating the optoelectronic device of claim 15, wherein the electrochemical etching consumes a portion of the additional impurity such that the concentration of the additional impurity is decreased after the electrochemical etching.
17. The method of fabricating the optoelectronic device of claim 13, wherein the additional impurity is doped at a depth from an upper surface of the second semiconductor layer, and the hollow component is formed about the same as the depth from the upper surface of the second semiconductor layer.
18. The method of fabricating the optoelectronic device of claim 11, wherein the additional impurity is doped during or after forming the second semiconductor layer.
19. The method of fabricating the optoelectronic device of claim 18, wherein the method for doping the additional impurity comprises ion implantation.
20. The method of fabricating the optoelectronic device of claim 11, wherein a doping temperature for doping the additional impurity is between 800 to 1200° C.
Type: Application
Filed: Jun 29, 2015
Publication Date: Nov 5, 2015
Inventors: Wei Chih PENG (Hsinchu City), Shih Te PAI (Hsinchu City)
Application Number: 14/753,405