Device Including a Semiconductor Layer With Graded Composition
An improved heterostructure for an optoelectronic device is provided. The heterostructure includes an active region, an electron blocking layer, and a p-type contact layer. The heterostructure can include a p-type interlayer located between the electron blocking layer and the p-type contact layer. In an embodiment, the electron blocking layer can have a region of graded transition. The p-type interlayer can also include a region of graded transition.
1 . An optoelectronic device comprising:
a mounting substrate including a mounting region and contact pads; and
a light source disposed on the mounting region and electrically connected to the contact pads, the light source including a heterostructure, the heterostructure comprising:
an active region including a series of alternating quantum wells and barriers, wherein the active region is configured to generate radiation having a peak wavelength;
an n-type layer having an n-type doping, the n-type layer located on a first side of the active region;
a p-type layer having a p-type dopant concentration, the p-type layer located on a second side of the active region opposite the first side, wherein the p-type layer has a non-uniform p-type doping profile region and at least one area of the p-type layer is transparent to the peak wavelength generated by the active region, wherein the at least one area of the p-type layer that is transparent to the peak wavelength includes an aluminum molar fraction decreasing with respect to distance from the active region and a first region in which the p-type dopant concentration has a first inclination with respect to distance from the active region and a second region in which the p-type dopant concentration has a second inclination with respect to distance from the active region, wherein the second inclination is different from the first inclination; and
an electron blocking layer located between the active region and the p-type layer.
2 . The optoelectronic device of claim 1 , further comprising:
a p-type electrode electrically connected to the p-type layer, wherein the p-type electrode comprises at least one conductive layer; and
an n-type electrode electrically connected to the n-type layer, wherein the n-type electrode comprises at least one conductive layer.
3 . The optoelectronic device of claim 1 , further comprising a substrate located adjacent to the n-type layer.
4 . The optoelectronic device of claim 1 , wherein the electron blocking layer includes a plurality of sublayers formed by alternating a sublayer of higher aluminum content with a sublayer of lower aluminum content.
5 . The optoelectronic device of claim 1 , further comprising a p-type transition region located between the electron blocking layer and the p-type layer, the p-type transition region including a varying dopant concentration that increases from a dopant concentration comparable to a p-type dopant concentration in the electron blocking layer to a dopant concentration comparable to the p-type dopant concentration in the p-type layer in a direction from the electron blocking layer to the p-type layer.
6 . The optoelectronic device of claim 1 , further comprising a dislocation located in the p-type layer.
7 . The optoelectronic device of claim 1 , wherein at least one region of the p-type layer has a lowest composition of aluminum of the layers of the heterostructure.
8 . The optoelectronic device of claim 1 , wherein the at least the one area of the p-type layer that is transparent to the peak wavelength generated by the active region includes aluminum.
9 . The optoelectronic device of claim 1 , wherein the n-type layer includes a short period superlattice that is transparent to the peak wavelength generated by the active region, wherein the short period superlattice includes aluminum.
10 . An optoelectronic device comprising:
a mounting substrate including a mounting region and contact pads; and
a light source disposed on the mounting region and electrically connected to the contact pads, the light source including a heterostructure, the heterostructure comprising:
an active region including a series of alternating quantum wells and barriers, wherein the active region is configured to generate radiation having a peak wavelength;
an n-type layer having an n-type doping, the n-type layer located on a first side of the active region;
a p-type layer having a p-type dopant concentration, the p-type layer located on a second side of the active region opposite the first side, wherein the p-type layer has a non-uniform p-type doping profile and at least one area of the p-type layer has a different transparency to the peak wavelength generated by the active region than another area of the p-type layer, wherein the at least one area of the p-type layer having the different transparency includes an aluminum molar fraction decreasing with respect to distance from the active region and a first region in which the p-type dopant concentration has a first inclination with respect to distance from the active region and a second region in which the p-type dopant concentration has a second inclination with respect to distance from the active region, wherein the second inclination is different from the first inclination; and
an electron blocking layer located between the active region and the p-type layer.