Abstract:
The display device includes at least one semiconductor light emitting device, a first color conversion pattern, a second color conversion pattern, and a light transmitting pattern. At least one semiconductor light emitting device is arranged on each of the first sub-pixel, the second sub-pixel, and the third sub-pixel. The first color conversion pattern is arranged on at least one semiconductor device corresponding to the first sub-pixel and includes first color conversion particles. The second color conversion pattern is arranged on at least one semiconductor device corresponding to the second sub-pixel and includes second color conversion particles. The light transmitting pattern is arranged on at least one semiconductor device corresponding to the third sub-pixel. The area of the first color conversion pattern, the area of the second color conversion pattern, and the area of the light transmitting pattern are different.
Abstract:
The display device includes a light source that generates first light, a conversion layer that outputs a plurality of lights using the first light, and a color filter layer. The conversion layer includes first to third conversion layers, and the color filter layer includes first to third color filters. The first conversion layer and the second conversion layer may include the same material. The first conversion layer and the first color filter may convert the first dominant wavelength of the first light to output second light having a second frequency. The second dominant wavelength of the second light may be located at the first color vertex of the color reproduction rate standard.
Abstract:
Disclosed are phosphors and, more particularly, yellow light emitting phosphors and light emitting device packages using the same. The yellow light emitting phosphor includes a first phosphor including at least one of Lu3Al5O12:Ce, SrSi2O2N2, and β-type SiAlON and a second phosphor mixed with the first phosphor to form a mixture, the second phosphor including α-type SiAlON(Li-α-SiAlON) containing Li as a metal component, wherein the second phosphor emits light having a central wavelength in a range of 550 nm to 590 nm by being excited by near ultraviolet (UV) or blue light, The mixture of the first phosphor and the second phosphor is excited by the near UV or blue light to emit yellow light.
Abstract:
An image projection apparatus is disclosed. The image projection apparatus according to an embodiment of the present disclosure includes: a light source configured to output blue light; and a phosphor wheel configured to output a plurality of colors of light based on the blue light incident upon rotation, wherein the phosphor wheel includes: a substrate; a yellow phosphor disposed in a first region on the substrate for output of yellow light; and a green phosphor disposed in a second region on the substrate for output of green light, wherein the green phosphor includes (Lu1−xYx)3Al5O12, with 0
Abstract:
Disclosed are a phosphor, in particular, a green light emitting phosphor, a method for producing the same and a light emitting device package including the same. Provided is a green light emitting phosphor emitting light having a main absorption band in a blue wavelength range and a main peak in a green wavelength range, the green light emitting phosphor represented by the following Formula 1. SrAl2(O1-3xN2x)4 [Formula 1]
Abstract:
Disclosed are a phosphor, in particular, a red light emitting phosphor, a method for producing the same and a light emitting device package including the same. Provided is a red light emitting phosphor emitting light having a main absorption band in a blue wavelength range and a main peak in a red wavelength range, the red light emitting phosphor being represented by the following Formula 1. (Sr1−xEux)Lu2O4 [Formula 1]
Abstract:
The present invention is applicable to display device-related technical fields and relates to, for example, a display device using a micro light-emitting diode (LED). The present invention may comprise: a substrate; partition walls which are arranged on the substrate to define a plurality of hexagonal unit pixel areas forming a honeycomb shape; semiconductor light-emitting elements each of which is disposed in each of the unit pixel areas to form each unit pixel; color conversion layers which convert light emitted from the semiconductor light-emitting elements into colors corresponding to the respective unit pixel areas; a porous layer which is disposed on the partition walls and in which a plurality of through-holes are formed; and color filter layers which are disposed on the porous layer.
Abstract:
A color wheel according to an embodiment of the present invention comprises: a basic fluorescent body having a basic light-emitting wavelength; and at least one modified fluorescent body having at least one light-emitting wavelength different from the basic light-emitting wavelength, wherein the basic fluorescent body comprises Y3Al5O12 and the modified fluorescent body comprises Y3(GaxAl(1-x))5O12:Ce in which gallium is doped on the basic fluorescent body
Abstract:
Disclosed are phosphors and, more particularly, yellow light emitting phosphors and light emitting device packages using the same. The yellow light emitting phosphor includes a first phosphor to emit light having a central wavelength located within a band of 510 nm to 550 nm, a second phosphor adapted to be mixed with the first phosphor to emit light having a central wavelength located within a band of 560 nm to 600 nm, and a third phosphor adapted to be mixed with the first and second phosphors to emit light having a central wavelength located within a band of 610 nm to 630 nm, the third phosphor having a light absorption rate of 50% or less at a wavelength of 550 nm.
Abstract:
A display panel and an image display apparatus including the same are disclosed. The display panel according to an embodiment of the present disclosure includes: a plurality of light sources configured to output blue light; a first color conversion layer configured to output first light based on the blue light from a first light source among the plurality of light sources; a second color conversion layer configured to output second light based on the blue light from a second light source among the plurality of light sources; a first color filter configured to output only red light in the first light from the first color conversion layer; and a second color filter configured to output only green light in the second light from the second color conversion layer. Accordingly, transmittance of output light may increase, and color gamut may be improved.