H01L2224/951

Transfer printing method and transfer printing apparatus

A transfer printing method and a transfer printing apparatus. The transfer method includes: transferring a plurality of devices formed on an original substrate to a transfer substrate; obtaining first position information of positions of the plurality of devices on the transfer substrate; obtaining second position information of corresponding positions, on a target substrate, of devices to be transferred; comparing the first position information with the second position information to obtain first target position information recording a first transfer position; and aligning the transfer substrate with the target substrate and performing a site-designated laser irradiation on at least part of devices on the transfer substrate corresponding to the first transfer position, simultaneously, according to the first target position information, so as to transfer the at least part of the devices from the transfer substrate to the target substrate.

Process for fabricating circuit components in matrix batches
11521862 · 2022-12-06 · ·

A process for batch fabrication of circuit components is disclosed via simultaneously packaging multiple circuit component dice in a matrix. Each die has electrodes on its tops and bottom surfaces to be electrically connected to a corresponding electrical terminal of the circuit component it's packaged in. For each circuit component in the matrix, the process forms preparative electrical terminals on a copper substrate. Component dice are pick-and-placed onto the copper substrate with their bottom electrodes landing on corresponding preparative electrical terminal. Horizontal conductor plates are then placed horizontally on top of the circuit component dice, with bottom surface at one end of each plate landing on the dice's top electrode. An opening is formed at the opposite end and has vertical conductive surfaces. A vertical conductor block is placed into the opening and lands on the preparative electrical terminal, and the opening's vertical conductive surfaces facing the top end side surface of the vertical block. A thermal reflow then simultaneously melts pre-applied soldering material so that each circuit component die and its vertical conductor block are soldered to the copper substrate below and its horizontal conductor plate above.

METHOD FOR TRANSFERRING ELECTRONIC DEVICE

A method for transferring an electronic device includes steps as follows. A flexible carrier is provided and has a surface with a plurality of electronic devices disposed thereon. A target substrate is provided corresponding to the surface of the flexible carrier. A pin is provided, and a pin end thereof presses on another surface of the flexible carrier without the electronic devices disposed thereon, so that the flexible carrier is deformed, causing at least one of the electronic devices to move toward the target substrate and to be in contact with the target substrate. A beam is provided to transmit at least a portion of the pin and emitted from the pin end to melt a solder. The electronic device is fixed on the target substrate by soldering. The pin is moved to restore the flexible carrier to its original shape, allowing the electronic device fixed by soldering to separate from the carrier.

DISPLAY DEVICE USING MICRO LED, AND METHOD FOR MANUFACTURING SAME
20220336712 · 2022-10-20 · ·

A semiconductor light emitting element for a display device can include a semiconductor light emitting structure including a first conductivity type semiconductor layer, an active layer, and a second conductivity type semiconductor layer; and a light extraction structure disposed on top of the second conductivity type semiconductor layer of the semiconductor light emitting structure, in which the light extraction structure includes a plurality of organic protrusions protruding in a vertical direction of the second conductivity type semiconductor layer; and a surface roughness pattern formed on at least a portion of a top surface of the second conductivity type semiconductor layer, and at least one of the plurality of organic protrusions contains nanoparticles positioned at an end of the at least one of the plurality of organic protrusions and an organic component supporting the nanoparticles.

LIGHT EMITTING DIODE AND DISPLAY APPARATUS HAVING THE SAME
20220336428 · 2022-10-20 ·

A light emitting device including a first LED stack, a second LED stack disposed on the first LED stack, a third LED stack disposed on the second LED stack, and a common electrode electrically connected to a first conductivity type semiconductor layer of each of the first, second, and third LED stacks, in which the common electrode includes a step in at least one of the first, second and third LED stacks.

Micro-component anti-stiction structures

A micro-component comprises a component substrate having a first side and an opposing second side. Fenders project from the first and second sides of the component substrate and include first-side fenders extending from the first side and a second-side fender extending from the second side of the component substrate. At least two of the first-side fenders have a non-conductive surface and are disposed closer to a corner of the component substrate than to a center of the component substrate.

PRESSURE-ACTIVATED ELECTRICAL INTERCONNECTION BY MICRO-TRANSFER PRINTING

A printed electrical connection structure includes a substrate having one or more electrical connection pads and a micro-transfer printed component having one or more connection posts. Each connection post is in electrical contact with a connection pad. A resin is disposed between and in contact with the substrate and the component. The resin has a reflow temperature less than a cure temperature. The resin repeatedly flows at the reflow temperature when temperature-cycled between an operating temperature and the reflow temperature but does not flow after the resin is exposed to a cure temperature. A solder can be disposed on the connection post or the connection pad. After printing and reflow, the component can be tested and, if the component fails, another component is micro-transfer printed to the substrate, the resin is reflowed again, the other component is tested and, if it passes the test, the resin is finally cured.

EFFICIENTLY MICRO-TRANSFER PRINTING MICRO-SCALE DEVICES ONTO LARGE-FORMAT SUBSTRATES
20170250167 · 2017-08-31 ·

A method of making a micro-transfer printed system includes providing a source wafer having a plurality of micro-transfer printable source devices arranged at a source spatial density; providing an intermediate wafer having a plurality of micro-transfer printable intermediate supports arranged at an intermediate spatial density less than or equal to the source spatial density; providing a destination substrate; micro-transfer printing the source devices from the source wafer to the intermediate supports of the intermediate wafer with a source stamp having a plurality of posts at a source transfer density to make an intermediate device on each intermediate support; and micro-transfer printing the intermediate devices from the intermediate wafer to the destination substrate at a destination spatial density less than the source spatial density with an intermediate stamp having a plurality of posts at an intermediate transfer density less than the source transfer density.

LED CHIP MOUNTING APPARATUS AND METHOD OF MANUFACTURING DISPLAY APPARATUS BY USING THE LED CHIP MOUNTING APPARATUS
20170278835 · 2017-09-28 ·

A light emitting diode chip mounting apparatus includes a guide plate including a first surface and a second surface opposite to the first surface, the second surface including at least one first tunnel that extends in a first direction, wherein the first tunnel defines a concave portion and the second surface includes a convex portion adjacent to the concave portion. The first tunnel is sized to accommodate a light emitting diode chip flowing therethrough.

CHIP-TRANSFERRING MODULE, AND DEVICE AND METHOD FOR TRANSFERRING AND BONDING CHIPS
20220238358 · 2022-07-28 ·

A chip-transferring module, and a device and a method for transferring and bonding chips are provided. The chip-transferring module includes a mounting main body, a light-transmitting member, a first gas guiding structure and a second gas guiding structure. The mounting main body has a first accommodating space and a second accommodating space. The light-transmitting member is disposed in the first accommodating space. The first gas guiding structure is disposed in the mounting main body and has a plurality of suction openings exposed out of the mounting main body. The second gas guiding structure is disposed in the mounting main body and has at least one intake opening communicating with the second accommodating space.