Abstract:
A light emitting diode (LED) module which includes: a substrate; a resist including a plurality of layers above the substrate; and an LED element mounted above the substrate. The plurality of layers includes a second layer that is an uppermost layer and a first layer that is an underlying layer. The second layer that is the uppermost layer includes fluorine as a component.
Abstract:
A light-emitting module is provided. The light-emitting module includes a substrate, a light-emitting element mounted on the substrate, and a sealant that seals the light-emitting element. The sealant includes a resin material containing a wavelength converter. A cross section of the sealant taken through the light-emitting element satisfies HMAX/W≤0.3, where W is a width of a base of the sealant and HMAX is a maximum height of the sealant.
Abstract:
A light-emitting device includes a plurality of light-emitting elements, a phosphorescent phosphor layer including a green phosphorescent phosphor that emits green light and has an afterglow property, and a sealing resin that disperses the green phosphorescent phosphor. The light-emitting device includes a red phosphor that emits red light, a sealing resin that disperses the red phosphor, and a red phosphor layer that contains only a red phosphor as a phosphor. The phosphorescent phosphor layer and the red phosphor layer are disposed apart from each other, and the light-emitting device emits white light while electric current is supplied to the plurality of light-emitting elements, and emits green light after ending the supply of the electric current to the light-emitting elements.
Abstract:
A lighting apparatus includes an LED chip that emits primary light, and phosphor particles that emit secondary light by being excited with the primary light. The lighting apparatus emits light including the primary light and the secondary light. The light has an emission spectrum having a first peak in a wavelength ranging from 420 nm to 460 nm, a second peak in the wavelength ranging from 530 nm to 580 nm, a third peak in the wavelength ranging from 605 nm to 655 nm, a first trough in the wavelength ranging from 440 nm to 480 nm, and a second trough in the wavelength ranging from 555 nm to 605 nm.
Abstract:
A light-emitting device is provided. The light-emitting device includes a substrate and a base on or defined by the substrate. A light-emitting element is above the base. An adhesive fixes the light-emitting element above the base. A sealant seals the light-emitting element and includes a phosphor that emits fluorescent light when stimulated by light from the light-emitting element. In a plan view of the base and the light-emitting element, a span of at least part of the base is less than or equal to a corresponding span of the light-emitting element.
Abstract:
A mount substrate includes: an insulation substrate containing resin and glass; connection conductors formed on a surface of the insulation substrate; a first white resist layer that covers the connection conductors; and a second white resist layer that covers the first white resist. Each of the connection conductors includes a copper foil and a plating layer partly formed on the copper foil. The plating layer is formed of metal having oxidation-resistant and corrosion-resistant characteristics higher than those of copper. The first white resist layer is formed with first openings that respectively expose the plating layers of the connection conductors. The second white resist layer covers a periphery of each plating layer of the connection conductors in planar view.
Abstract:
A light emitting diode (LED) module including: a substrate; a resist including a plurality of layers, above the substrate; and an LED element mounted above the resist via an adhesive. The adhesive includes an addition-reaction type silicone resin. In the resist, a higher positioned layer of the plurality of layers is lower in at least one of sulfur content, phosphorus content, and nitrogen content than a lower positioned layer of the plurality of layers.
Abstract:
A liquid crystal lens includes a first transparent substrate, a second transparent substrate, a liquid crystal layer disposed between the first transparent substrate and the second transparent substrate, a first transparent electrode disposed between the first transparent substrate and the liquid crystal layer and second transparent electrodes disposed between the second transparent substrate and the liquid crystal layer and facing the first transparent electrode. At least one second transparent electrode of the second transparent electrodes is disposed in each of divided regions into which a surface region, facing the first transparent substrate, of the second transparent substrate is divided.
Abstract:
A light-emitting module is provided. The light emitting module includes a substrate; a thin-film layer that is disposed above the substrate, the thin-film layer defining an opening that exposes a surface of the substrate; a light-emitting element disposed above the substrate and in the opening; and a sealant disposed above the substrate and in the opening, the sealant containing a wavelength converter and sealing the light-emitting element. A thickness of the thin-film layer is less than a thickness of the sealant. An edge portion of the sealant is in contact with the thin-film layer. The surface of the substrate and a surface of the thin-film layer are hydrophilic. The surface of the thin-film layer has a lower wettability than a wettability of the surface of the substrate.
Abstract:
A light-emitting device includes: a board which is a resin board having an elongated shape; a conductive film formed on the board; and a plurality of LED elements disposed over the board. The plurality of LED elements include two adjacent LED elements arranged along a first direction. The conductive film includes (i) a first conductive part which electrically connects the two adjacent LED elements and at least a portion of which is located between the two adjacent LED elements and (ii) a second conductive part located on two outer sides of the first conductive part in a second direction intersecting the first direction. The second conductive part has a slit on each of the two outer sides of the first conductive part, and the slit extends in the second direction intersecting the longitudinal direction of the board.