Today's advanced technology allows engineers to fabricate GaN LEDs with various heights, widths, shapes, and materials. Total internal reflection is a key factor in GaN LED design, because all light that is created inside the LED is lost unless it approaches the chip to air interface at an angle less than 23.58?? with respect to the normal. The narrow range of angles at which light can successfully escape the chip is a result of the large difference in refractive indices between GaN and air. Adding a layer of ITO to the GaN reduces the difference in refractive indices between steps and increases the critical angle to 28.4??. Transmitting from ITO into epoxy reduces this difference in refractive indices again, bringing the critical angl...
which permits unrestricted use, distribution, and reproduction in any medium, provided the original ...
A hexagonal pyramids nanostructure made of a UV curable polymer was implemented on the ITO electrode...
This is a study regarding nano-grating structure location of GaN LEDs. A 2D model of a nano-grating ...
We study nano-scale ITO top transmission gratings to improve light extraction efficiency (LEE). We u...
We study the top transmission grating's improvement on GaN LED light extraction efficiency. We ...
This study reveals the effect of nanoscale ITO transmission gratings on light emission from the top,...
We present simulation results of the indium tin oxide (ITO) top diffraction grating using a rigorous...
In this paper, we use a Finite-Difference Time-Domain GaN LED model to study constant wave (CW) aver...
The Gallium Nitride (GaN) Light-Emitting-Diode (LED) bottom refection grating simulation and results...
We present a grating model of two-dimensional (2D) rigorous coupled wave analysis (RCWA) to study to...
We present a grating model of two-dimensional (2D) rigorous coupled wave analysis (RCWA) to study to...
We present simulation results of the indium tin oxide (ITO) top diffraction grating using a rigorous...
We study nano-grated surface GaN LED to improve light extraction efficiency by optimizing the device...
The GaN-based LEDs external quantum efficiency (EQE) is significantly improved by using the patterne...
A 3-fold symmetric photonic-crystal grating is simulated using improved FDTD-model. Transmission gra...
which permits unrestricted use, distribution, and reproduction in any medium, provided the original ...
A hexagonal pyramids nanostructure made of a UV curable polymer was implemented on the ITO electrode...
This is a study regarding nano-grating structure location of GaN LEDs. A 2D model of a nano-grating ...
We study nano-scale ITO top transmission gratings to improve light extraction efficiency (LEE). We u...
We study the top transmission grating's improvement on GaN LED light extraction efficiency. We ...
This study reveals the effect of nanoscale ITO transmission gratings on light emission from the top,...
We present simulation results of the indium tin oxide (ITO) top diffraction grating using a rigorous...
In this paper, we use a Finite-Difference Time-Domain GaN LED model to study constant wave (CW) aver...
The Gallium Nitride (GaN) Light-Emitting-Diode (LED) bottom refection grating simulation and results...
We present a grating model of two-dimensional (2D) rigorous coupled wave analysis (RCWA) to study to...
We present a grating model of two-dimensional (2D) rigorous coupled wave analysis (RCWA) to study to...
We present simulation results of the indium tin oxide (ITO) top diffraction grating using a rigorous...
We study nano-grated surface GaN LED to improve light extraction efficiency by optimizing the device...
The GaN-based LEDs external quantum efficiency (EQE) is significantly improved by using the patterne...
A 3-fold symmetric photonic-crystal grating is simulated using improved FDTD-model. Transmission gra...
which permits unrestricted use, distribution, and reproduction in any medium, provided the original ...
A hexagonal pyramids nanostructure made of a UV curable polymer was implemented on the ITO electrode...
This is a study regarding nano-grating structure location of GaN LEDs. A 2D model of a nano-grating ...