Patent classifications
H10H20/036
Packaging device and packaging method
The present invention discloses a packaging device and a packaging method and relates to a field of manufacturing technique of a display panel. The packaging device is used to package a display panel, the display panel comprising a first substrate and a second substrate that are arranged opposed to each other and are able to be packaged by a sealing material, the packaging device comprising a first adsorption part and a second adsorption part that are able to attract each other through a magnetic force, one of the first adsorption part and the second adsorption part configured to be detachably arranged on the outside of the first substrate, and the other of the first adsorption part and the second adsorption part configured to be detachably arranged on the outside of the second substrate.
METHOD OF MANUFACTURING LIGHT EMITTING DEVICE
A method of manufacturing a light emitting device includes: mounting light emitting elements on a collective substrate; arranging a first protruding member surrounding the light emitting elements; arranging a second protruding member between the light emitting elements; forming a cover member covering an upper end of the second protruding member, a lateral surface of each of the light emitting elements in a region surrounded by the first protruding member; and singulating the light emitting devices by cutting the cover member, the second protruding member, and the collective substrate at a portion including the second protruding member. The second protruding member is harder than the cover member. An upper end of the second protruding member is located lower than that of the first protruding member but higher than the upper surface of each of the light emitting elements.
LIGHT EMITTING PACKAGE
A light emitting package includes a first lead frame; a second lead frame spaced apart from the first lead frame in a first direction; a body coupled to the first lead frame and the second lead frame; and a light emitting element on the first lead frame. The first lead frame includes first to fourth side parts, the first side part includes a first protrusion that protrudes outwards from one side surface of the body, and a first contact part disposed at the end of the first protrusion. The second lead frame includes fifth to eighth side parts, the fifth side part includes a second protrusion that protrudes outwards from a side surface of the body, which is symmetrical to the one side surface of the body, and a second contact part disposed at the end of the second protrusion. Each of the first contact part and the second contact part includes a second layer and first layer covers the second layer.
PACKAGE, PACKAGE INTERMEDIATE BODY, LIGHT EMITTING DEVICE, METHOD FOR MANUFACTURING SAME
A package has a first electrode, a second electrode, and a first resin body. The first resin body has a retainer portion and a wall portion. The retainer portion retains the first electrode and the second electrode and forms a bottom portion of the package together with the first electrode and the second electrode. The wall portion surrounds a mounting region on the bottom portion and has a pair of opposite outer sides. Each of the first electrode and the second electrode has an outer lead portion extending outwardly from respective one of the pair of opposite outer sides of the wall portion. The first resin body further has a flange portion having parts extending from the pair of opposite outer sides of the wall portion. Each of the outer lead portions extends outwardly beyond a distal end of the corresponding part of the flange portion in plan view.
Printed components in device pockets
A micro-device structure includes an insulating layer and a micro-device disposed on the insulating layer. A pocket is formed in the micro-device that extends from a surface of the micro-device opposite the insulating layer through the micro-device to the insulating layer. A micro-component is disposed in the pocket and is non-native to the micro-device and the insulating layer. The micro-component can emit or receive light through the insulating layer and can be connected to and controlled by a micro-circuit disposed in the micro-device.
Component arrangement, package and package arrangement, as well as production method
Provided is a component arrangement, including a carrier substrate; a spacer which is arranged on the carrier substrate so as to surround an installation space and has an outlet opening on a side facing away from the carrier substrate; an optical component arranged in the installation space; a contact connection which electrically conductively connects the optical component to external contacts arranged outside the installation space; a cover substrate which is arranged on the spacer and with which the outlet opening is covered in a light-permeable manner; and a light-reflecting surface which is formed on an anisotropically etched silicon component and is arranged in the installation space as an inclined surface at an angle of approx. 45 relative to the surface of the carrier substrate facing the installation space, in such a way that light radiated in a horizontal direction onto the light-reflecting surface can be radiated out in the vertical direction through the opening and the cover substrate, and vice versa.
Manufacturing micro-LED displays to reduce subpixel crosstalk
A method for manufacturing micro-LED displays includes depositing a first material over a substrate having a plurality of micro-LEDs such that the plurality of micro-LEDs are covered by the first material and the first material fills gaps laterally separating the micro-LEDs, removing a portion of the first material from the gaps that laterally separate the plurality of micro-LEDs to form trenches that extend to or below light-emitting layers of the micro-LEDs, depositing a second material over the substrate such that the second material covers the first material and extends into the trenches, and removing a portion of the first and second material over the plurality of micro-LEDs to expose top surfaces of the plurality of micro-LEDs and such that isolation walls positioned in the gaps between the plurality of micro-LEDs extend vertically higher than the top surface of the first material.
Optical device and method for manufacturing same
The present invention relates to an optical device and a method for manufacturing the same. The technical object of the invention is to realize a surface emitting body which allows heat generated from a light-emitting chip to be easily dissipated, eliminates the need for an additional wiring layer, and allows a singular light emitting chips or a plurality of light emitting chips to be arranged in series, in parallel, or in series-parallel. The present invention discloses an optical device comprising: a substrate; a plurality of light emitting chips disposed on the substrate; a plurality of conductive wires which electrically connect the substrate with the light emitting chips such that the plurality of light emitting chips are connected to each other in series, in parallel or in series-parallel; and a protective layer which covers the plurality of light emitting chips and the plurality of conductive wires on the substrate.
Wafer level packaging of multiple light emitting diodes (LEDs) on a single carrier die
An LED wafer includes LED dies on an LED substrate. The LED wafer and a carrier wafer are joined. The LED wafer that is joined to the carrier wafer is shaped. Wavelength conversion material is applied to the LED wafer that is shaped. Singulation is performed to provide multiple LED dies that are joined to a single carrier die. The multiple LED dies on the single carrier die are connected in series and/or in parallel by interconnection in the LED dies and/or in the single carrier die. The singulated devices may be mounted in an LED fixture to provide high light output per unit area. Related devices and fabrication methods are described.
Photoelectric device and method of manufacturing the same
A photoelectric device includes an electrode structure, an LED (light emitting diode) element, a zener diode and a reflective cup. The LED element, the zener diode and the reflective cup are arranged on the electrode structure. The LED element and the zener diode are electrically connected in anti-parallel with each other. The reflective cup comprises an inner surface defined thereof and a nick defined in an outside of the reflective cup. The LED element is surrounded by the inner surface of the reflective cup and the zener diode is arranged in the nick.