H01L2224/95093

CHIP DISPENSER FOR SELF-ASSEMBLY

The present invention relates to a method of manufacturing a display device, and more particularly, to a chip dispenser for supplying a micro-LED. The present invention provides a chip dispenser including a body part for accommodating the fluid and the semiconductor light emitting device, and discharging the accommodated fluid and the semiconductor light emitting device, a pressure controller for varying the pressure inside the body; and a stirring part disposed in at least one of the inside and outside of the body, agitating the fluid accommodated in the body and the pressure controller increases the internal pressure of the body part so that the fluid and the semiconductor light emitting device are discharged to the outside in a state in which the agitating part stirs the fluid.

APPARATUS FOR ESPECIALLY THERMALLY JOINING MICRO-ELECTROMECHANICAL PARTS

The invention relates to an apparatus for especially thermally joining micro-electromechanical parts (2, 3) in a process chamber (8), comprising a bottom support plate (11) for holding at least one first (2) of the parts (2, 3) to be joined, and a pressing device (15) for applying pressure to at least one second (3) of the parts (2, 3) to be joined in relation to the at least one first part (2). The pressing device (15) is equipped with an expandable membrane (19) provided for entering in contact with the at least one second part (3). Fluid pressure, in particular gas pressure, can be applied to said membrane (19) on the side thereof facing away from the parts (2, 3) to be joined.

DEVICE AND METHOD OF FLUIDIC ASSEMBLY OF MICROCHIPS ON A SUBSTRATE

A cell of fluidic assembly of microchips on a substrate, including: a base having its upper surface intended to receive the substrate; a body laterally delimiting a fluidic chamber above the substrate; and a cover closing the fluidic chamber from its upper surface, wherein the body comprises first and second nozzles respectively emerging onto opposite first and second lateral edges of the fluidic chamber, each of the first and second nozzles being adapted to injecting and/or sucking in a liquid suspension of microchips into and/or from the fluidic chamber, in a direction parallel to the mean plane of the substrate.

MODULAR CONSTRUCTION OF HYBRID-BONDED SEMICONDUCTOR DIE ASSEMBLIES AND RELATED SYSTEMS AND METHODS

Stacked semiconductor assemblies, and related systems and methods, are disclosed herein. A representative stacked semiconductor assembly can include a lowermost die and two or more modules carried by an upper surface of the lowermost die. Each of the module(s) can include a base die and one or more upper dies and/or an uppermost die carried by the base die. Each of the dies in the module is coupled via hybrid bonds between adjacent dies. Further, the base die in a lowermost module is coupled to the lowermost die by hybrid bonds. As a result of the modular construction, the lowermost die can have a first longitudinal footprint, the base die in each of the module(s) can have a second longitudinal footprint smaller than the first longitudinal footprint, and each of the upper die(s) and/or the uppermost die can have a third longitudinal footprint smaller than the second longitudinal footprint.

Device and method of fluidic assembly of microchips on a substrate

A cell of fluidic assembly of microchips on a substrate, including: a base having its upper surface intended to receive the substrate; a body laterally delimiting a fluidic chamber above the substrate; and a cover closing the fluidic chamber from its upper surface, wherein the body comprises first and second nozzles respectively emerging onto opposite first and second lateral edges of the fluidic chamber, each of the first and second nozzles being adapted to injecting and/or sucking in a liquid suspension of microchips into and/or from the fluidic chamber, in a direction parallel to the mean plane of the substrate.

THERMOCOMPRESSION BONDING TOOL FOR PANEL-LEVEL THERMO-COMPRESSION BONDING

The present disclosure is directed to an apparatus having a bond head configured to heat and compress a semiconductor package assembly, and a bonding stage configured to hold the semiconductor package assembly, wherein the bonding stage comprises a ceramic material including silicon and either magnesium or indium.

Modular construction of hybrid-bonded semiconductor die assemblies and related systems and methods

Stacked semiconductor assemblies, and related systems and methods, are disclosed herein. A representative stacked semiconductor assembly can include a lowermost die and two or more modules carried by an upper surface of the lowermost die. Each of the module(s) can include a base die and one or more upper dies and/or an uppermost die carried by the base die. Each of the dies in the module is coupled via hybrid bonds between adjacent dies. Further, the base die in a lowermost module is coupled to the lowermost die by hybrid bonds. As a result of the modular construction, the lowermost die can have a first longitudinal footprint, the base die in each of the module(s) can have a second longitudinal footprint smaller than the first longitudinal footprint, and each of the upper die(s) and/or the uppermost die can have a third longitudinal footprint smaller than the second longitudinal footprint.

Chip dispenser for self-assembly

The present invention relates to a method of manufacturing a display device, and more particularly, to a chip dispenser for supplying a micro-LED. The present invention provides a chip dispenser including a body part for accommodating the fluid and the semiconductor light emitting device, and discharging the accommodated fluid and the semiconductor light emitting device, a pressure controller for varying the pressure inside the body; and a stirring part disposed in at least one of the inside and outside of the body, agitating the fluid accommodated in the body and the pressure controller increases the internal pressure of the body part so that the fluid and the semiconductor light emitting device are discharged to the outside in a state in which the agitating part stirs the fluid.

MODULAR CONSTRUCTION OF HYBRID-BONDED SEMICONDUCTOR DIE ASSEMBLIES AND RELATED SYSTEMS AND METHODS

Stacked semiconductor assemblies, and related systems and methods, are disclosed herein. A representative stacked semiconductor assembly can include a lowermost die and two or more modules carried by an upper surface of the lowermost die. Each of the module(s) can include a base die and one or more upper dies and/or an uppermost die carried by the base die. Each of the dies in the module is coupled via hybrid bonds between adjacent dies. Further, the base die in a lowermost module is coupled to the lowermost die by hybrid bonds. As a result of the modular construction, the lowermost die can have a first longitudinal footprint, the base die in each of the module(s) can have a second longitudinal footprint smaller than the first longitudinal footprint, and each of the upper die(s) and/or the uppermost die can have a third longitudinal footprint smaller than the second longitudinal footprint.