C09K11/00

FINE FLUORESCENT PARTICLES, PROCESS FOR PRODUCING FINE FLUORESCENT PARTICLES, THIN FLUORESCENT FILM, WAVELENGTH CONVERSION FILM, WAVELENGTH CONVERSION DEVICE, AND SOLAR CELL
20170321119 · 2017-11-09 · ·

A luminescent substance particle including BaSnO.sub.3 having a perovskite-type structure, wherein the luminescent substance particle contains one of 0.07% by mass or less of Fe (iron), 0.005% by mass or less of Cr (chromium) and 0.02% by mass or less of Ni (nickel). A wavelength conversion film including the luminescent substance particle for converting a light in an ultraviolet region to a light in an infrared region. A wavelength conversion device including a substrate and the wavelength conversion film formed on the substrate.

Method for Preparing Fluorescent Nanomaterial-polymer Composite, and Light Emitting Device
20210403809 · 2021-12-30 ·

Disclosed are a method for preparing a fluorescent nanomaterial-polymer composite and a wavelength converting element, and a light emitting device. The method for preparing the fluorescent nanomaterial-polymer composite includes: at least one precursor provided, the precursor includes a fluorescent nanomaterial and a polymer; and in a first temperature at or higher than a melting point of the polymer, the precursor is mixed, and then cooled.

Illumination device including laser light source, molded body with obtusely inclined side surfaces, and phosphor layer

A fluorescent molded body includes a first surface that receives incident light from a laser light source, a second surface that faces the first surface, first and second lateral surfaces each contacting the second surface at a blunt angle, and a phosphor layer that is excited by light from the laser light source to emit a specific light. A distance between the position where the first and second lateral surfaces meet the second surface is less than two times the wavelength of the second light, such that evanescent waves generated at the first and second lateral surfaces by the second light, are coupled together to be converted into output light.

PEROVSKITE OPTOELECTRONIC DEVICES AND METHOD FOR MANUFACTURING SAME
20220199933 · 2022-06-23 ·

Provided are a perovskite optoelectronic device containing an exciton buffer layer, and a method for manufacturing the same. The optoelectronic device of the present invention comprises: an exciton buffer layer in which a first electrode, a conductive layer disposed on the first electrode and comprising a conductive material, and a surface buffer layer containing fluorine-based material having lower surface energy than the conductive material are sequentially deposited; a photoactive layer disposed on the exciton buffer layer and containing a perovskite photoactive layer; and a second electrode disposed on the photoactive layer. Accordingly, a perovskite is formed with a combined FCC and BSS crystal structure in a nanoparticle photoactive layer. The present invention can also form a lamellar or layered structure in which an organic plane and an inorganic plane are alternatively deposited; and an exciton can be bound by the inorganic plane, thereby being capable of expressing high color purity.

QUANTUM DOT-CONTAINING POLYMER AND METHOD FOR PRODUCING THE SAME

A quantum dot-containing polymer contains quantum dots that emit fluorescence by excitation light, wherein the quantum dot-containing polymer is a combined polymer of the quantum dots in which a ligand having a reactive substituent is coordinated to the outermost surface and a silicone compound having a polymerizable substituent. The quantum dot-containing polymer is stabilized by mild conditions.

LIGHT FILTER FOR REPAIRING THE RETINA

The detailed characteristics of the red fluorescence of the human lens—that occurs at the seventh decade of life—is recognized as an example of evolutionary photobiomodulation for repair of the retina, and then used as a paradigm for extending current parametric values for reproducible photobiomodulation. The new photobiomodulation parameters involve relative intensities for wavelength bands within the range of 600 nm to 900 nm.

Radiation absorbing element for increasing color gamut of quantum dot based display devices
11320577 · 2022-05-03 · ·

Embodiments of a display device are described. The display device includes a backlight unit having a light source, a quantum dot film, and a radiation absorbing element. The quantum dot film is optically coupled to the light source and is configured to process light received from the light source. The radiation absorbing element is optically coupled to the quantum dot film and is configured to tune a spectral emission width of the processed light received from the quantum dot film to achieve over 90% color gamut coverage of a standard RGB color space.

Heterocyclic compounds and organic light emitting device using the same

The present invention relates to a novel cyclic compound represented by Formula 1, and an organic light emitting device comprising an organic material layer including the novel cyclic compound and having improved efficiency, low driving voltage, and enhanced lifetime characteristic: ##STR00001##

Polymer, quantum dots film layer and preparation method thereof
11233212 · 2022-01-25 · ·

The present disclosure provides a polymer, a quantum dots film layer and a preparation method thereof. The polymer includes a plurality of polymerized units, and each of the polymerized units includes a hydrophobic structure and a carrier transport structure. The hydrophobic structure is linked to the carrier transport structure via a bridge bond containing a functional atom, and the hydrophobic structure is provided with a first ligand. When the polymerized unit is broken at the bridge bond, a hydrophobic monomer containing the first ligand and a carrier transport monomer containing a second ligand are generated. The second ligand includes the functional atom, and the second ligand is stronger than the first ligand in coordination activity.

Scintillator plate, radiation imaging apparatus, and method of manufacturing scintillator plate
11181650 · 2021-11-23 · ·

A scintillator plate provided with a scintillator having, on a substrate, a first surface facing the substrate and a second surface on an opposite side to the first surface is provided. The scintillator includes needle-like crystals each containing an alkali metal halide compound, thallium iodide, and copper and/or silver as an additive element. The additive element is contained in the second surface at a concentration of not less than 0.04 mol % and not more than 0.5 mol %, and has a higher concentration in the first surface than in the second surface. A thickness of a largest portion of each of the needle-like crystals becomes not less than one time and not more than nine times a thickness at a height of 10 μm in a direction from the first surface to the second surface.