Patent classifications
H01L2224/95136
MICRO-LED MOUNTING SUBSTRATE, MICRO-LED DISPLAY, AND METHOD OF MANUFACTURING MICRO-LED MOUNTING SUBSTRATE
A micro-LED mounting substrate includes a wiring line substrate provided with at least a plurality of substrate-side connecting portions on one plate surface, a plurality of micro-LEDs disposed side by side in the one plate surface of the wiring line substrate and each including at least a light-emitting face and an LED-side connecting portion provided on a surface opposite to the light-emitting face and connected to the substrate-side connecting portion, a first positioning portion provided on at least a portion of the plurality of micro-LEDs, and facing an installation surface of the substrate-side connecting portion of the wiring line substrate, and a second positioning portion provided on the installation surface of the substrate-side connecting portion of the wiring line substrate and capable of positioning the micro-LEDs including the first positioning portion by being recess-projection-fitted to the first positioning portion.
METHODS OF MAKING PRINTED STRUCTURES
An example of a method of making a printed structure comprises providing a destination substrate, contact pads disposed on the destination substrate, and a layer of adhesive disposed on the destination substrate. A stamp with a component adhered to the stamp is provided. The component comprises a stamp side in contact with the stamp and a post side opposite the stamp side, a circuit, and connection posts extending from the post side. Each of the connection posts is electrically connected to the circuit. The component is pressed into contact with the adhesive layer to adhere the component to the destination substrate and to form a printed structure having a volume defined between the component and the destination substrate. The stamp is removed and the printed structure is processed to fill or reduce the volume.
MICRO LIGHT-EMITTING DIODE DISPLAY PANEL AND MANUFACTURING METHOD THEREFOR
A manufacturing method fora micro light-emitting diode (LED) display panel includes: providing a base substrate carrying a plurality of LED dies, each LED die including a first semiconductor layer, a light-emitting material layer, a second semiconductor layer and a first conductive layer, the first semiconductor layer being bonded with the base substrate through a sacrificial layer, a material of the sacrificial layer being decomposable under laser irradiation; providing a backplane having a plurality of bonding structures; bonding at least some LED dies of the plurality of LED dies to at least some of the plurality of bonding structures through respective first conductive layers; and peeling each of the at least some LED dies from the base substrate through laser lift-off.
MULTI-USE TRANSFER MOLD AND METHOD OF MANUFACTURING DISPLAY APPARATUS
A multi-use transfer mold and a method of manufacturing a display apparatus are provided. The multi-use transfer mold includes a transfer substrate and a plurality of grooves provided in the transfer substrate, wherein each of the grooves includes a transfer area for accommodating a transfer micro-light-emitting device and a preliminary area for accommodating a preliminary micro-light-emitting device, wherein the preliminary area is connected to the transfer area.
MICRO LIGHT EMITTING DEVICE ARRAY AND METHOD OF MANUFACTURING THE SAME
Provided is a method of manufacturing a micro light emitting device array. The method includes forming a display transfer structure including a transfer substrate and a plurality of micro light emitting devices, where the transfer substrate includes at least two first alignment marks; preparing a driving circuit board, the driving circuit board including a plurality of driving circuits and at least two second alignment marks, arranging the display transfer structure and the driving circuit board to face each other so that the at least two first alignment marks and the at least two second alignment marks face one another and bonding the plurality of micro light emitting devices of the display transfer structure to the plurality of driving circuits.
METHOD FOR MANUFACTURING DISPLAY DEVICE, AND SUBSTRATE FOR MANUFACTURE OF DISPLAY DEVICE
Disclosed in the present specification are a substrate for transferring, with high reliability, a semiconductor light emitting element, and a method for manufacturing a display device by using same. Particularly, when a semiconductor light emitting element is self-assembled on an assembly substrate by using an electromagnetic field, an assembly groove in which a semiconductor light emitting element for alignment is assembled is formed in the assembly substrate. The semiconductor light emitting element for alignment, assembled in the assembly groove, is used for alignment in a step of being transferred to a final wiring substrate. Unlike conventional alignment keys, the semiconductor light emitting element for alignment reflects an alignment error of semiconductor light emitting elements that occurs during a transfer process after assembly. Therefore, when semiconductor light emitting elements are transferred to a wiring substrate on the basis of the semiconductor light emitting element for alignment, transfer accuracy can be improved.
Apparatus and methods for micro-transfer-printing
In an aspect, a system and method for assembling a semiconductor device on a receiving surface of a destination substrate is disclosed. In another aspect, a system and method for assembling a semiconductor device on a destination substrate with topographic features is disclosed. In another aspect, a gravity-assisted separation system and method for printing semiconductor device is disclosed. In another aspect, various features of a transfer device for printing semiconductor devices are disclosed.
Nanoscale-aligned three-dimensional stacked integrated circuit
A method for fabricating a three-dimensional (3D) stacked integrated circuit. Pick-and-place strategies are used to stack the source wafers with device layers fabricated using standard two-dimensional (2D) semiconductor fabrication technologies. The source wafers may be stacked in either a sequential or parallel fashion. The stacking may be in a face-to-face, face-to-back, back-to-face or back-to-back fashion. The source wafers that are stacked in a face-to-back, back-to-face or back-to-back fashion may be connected using Through Silicon Vias (TSVs). Alternatively, source wafers that are stacked in a face-to-face fashion may be connected using Inter Layer Vias (ILVs).
METHOD AND ARRANGEMENT FOR ASSEMBLY OF MICROCHIPS INTO A SEPARATE SUBSTRATE
Method and arrangement for assembling one or more microchips (415; 615; 715; 815; 915; 1015) into one or more holes (422; 722), respectively, in a substrate surface (421; 721) of a separate receiving substrate (420; 720; 820; 1020). The holes (422; 722) of the substrate is for microchip insertion out-of-plane in relation to said substrate surface. Each of said microchips is provided with a ferromagnetic layer (213; 613) of ferromagnetic material. The microchips are placed (503) on said substrate surface (421; 721) and it is applied and moved (504) one or more magnetic fields affecting said ferromagnetic layer (213; 613) of each microchip such that the microchips thereby become out-of-plane oriented in relation to said substrate surface (421; 721) and move over the substrate surface (421; 721) until assembled into said holes (422; 722).
METHOD FOR MANUFACTURING DISPLAY PANEL, DISPLAY PANEL, AND DISPLAY APPARATUS
A method for manufacturing a display panel includes providing a backplate, forming bonding parts on backplate, forming an auxiliary layer on backplate, releasing light-emitting elements onto the auxiliary layer such that electrodes of the light-emitting elements are in contact with the first parts to form an intermediate backplate, arranging the intermediate backplate under first predetermined condition under which a fluidity of the first part is greater than that of the second part, and bonding the electrodes and the bonding parts to form an eutectic bonding layer, and arranging the intermediate backplate under second predetermined condition such that the first and second parts form solid-state first and second members. The backplate includes first and second regions. The bonding parts are located in the first regions. The auxiliary layer covers the backplate and the bonding parts. The auxiliary layer includes first and second parts respectively located in the first and second regions.