H01L2224/75655

Substrate chuck for self-assembling semiconductor light emitting diodes

Discussed is a substrate chuck for allowing one surface of a substrate to be in contact with a fluid, the substrate chuck including a first frame having a hole at a central portion thereof; a second frame having a hole at a central portion thereof and disposed to overlap the first frame; and a frame transfer part configured to vertically move the second frame with respect to the first frame, wherein the first frame includes: a bottom portion at which the hole is formed; and a sidewall portion formed on a peripheral edge of the bottom portion, and wherein a height of the sidewall portion is greater than a depth at which the substrate is placed into the fluid.

Device for self-assembling semiconductor light-emitting diodes

Discussed is a device for self-assembling semiconductor light-emitting diodes for placing the semiconductor light-emitting diodes at predetermined positions on a substrate by using an electric field and a magnetic field, the substrate being accommodated in an assembly chamber accommodating a fluid, the device including a substrate chuck configured to dispose the substrate at an assembly position, wherein the substrate chuck includes a substrate support part configured to support the substrate on which an assembly electrode is formed, a rotating part configured to support the substrate support part, and a controller configured to control driving of the substrate chuck, wherein the substrate support part includes micro-holes for injecting a gas between the fluid and the substrate, and wherein the controller controls whether the gas is injected through the micro-holes according to whether the substrate is raised or lowered.

Fluid-suspended microcomponent harvest, distribution, and reclamation
10242977 · 2019-03-26 · ·

Fluid-suspended microcomponent management systems and methods are provided. The method provides a first reservoir containing a first solution and a magnetic collection head. A plurality of magnetically polarized microcomponents is suspended in the first solution, where each microcomponent has a maximum cross-section of 150 micrometers (m) and a maximum mass of 1 microgram. A magnetic field is induced in the collection head and the microcomponents are exposed to the magnetic field. A plurality of microcomponents becomes fixed in position on a collection surface in response to the magnetic field. In one aspect, the step of exposing the microcomponents to the magnetic field includes immersing the collection head in the first reservoir. As a result, the plurality of microcomponents is collected on a surface of the collection head. Alternatively, the step of fixing the plurality of microcomponents in position includes fixing the microcomponents in position on the collection surface sidewall.

SELF-ASSEMBLY DONOR AND METHOD FOR MANUFACTURING DISPLAY DEVICE USING THE SAME

A self-assembly donor and a method for manufacturing a display device using self-assembly donor are discussed. The self-assembly donor in one example includes a self-assembly substrate, a first assembly electrode disposed on the self-assembly substrate, a second assembly electrode disposed on the self-assembly substrate and spaced apart from the first assembly electrode, an insulating layer covering the first assembly electrode and the second assembly electrode, a planarization layer disposed on the insulating layer and having a plurality of assembly pockets defined therein, and a plurality of via holes extending thorough the self-assembly substrate, the insulating layer, and the planarization layer.

Chip transfer apparatus

A chip transfer apparatus includes: a chip storage module in which a plurality of micro-semiconductor chips and a suspension including impurities are stored; a chip filtration module separating a first suspension including the plurality of micro-semiconductor chips and a second suspension including the impurities in the suspension; and a chip supply module configured to supply the first suspension onto the transfer substrate such that the first suspension is introduced from the chip filtration module and the plurality of micro-semiconductor chips are flowable on the transfer substrate.

LED chip mounting apparatus and method of manufacturing display apparatus by using the LED chip mounting apparatus

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.

Apparatus and method for manufacturing light-emitting display device

An apparatus for manufacturing a light emitting display device includes a substrate transfer stage including a plurality of support plates arranged at an interval in a first direction, each of the plurality of support plates extending in a second direction; and at least one electric-field application module disposed on at least one side of the substrate transfer stage. The at least one electric-field application module includes a probe head including at least one probe pin; and a driver connected to the probe head to move the probe head at least up and down.

Fluid-Suspended Microcomponent Harvest, Distribution, and Reclamation
20180102352 · 2018-04-12 ·

Fluid-suspended microcomponent management systems and methods are provided. The method provides a first reservoir containing a first solution and a magnetic collection head. A plurality of magnetically polarized microcomponents is suspended in the first solution, where each microcomponent has a maximum cross-section of 150 micrometers (m) and a maximum mass of 1 microgram. A magnetic field is induced in the collection head and the microcomponents are exposed to the magnetic field. A plurality of microcomponents becomes fixed in position on a collection surface in response to the magnetic field. In one aspect, the step of exposing the microcomponents to the magnetic field includes immersing the collection head in the first reservoir. As a result, the plurality of microcomponents is collected on a surface of the collection head. Alternatively, the step of fixing the plurality of microcomponents in position includes fixing the microcomponents in position on the collection surface sidewall.

Fluidic Self Assembly of Contact Materials

Embodiments are related to systems and methods for fluidic assembly, and more particularly to systems and methods for forming contacts during fluidic assembly.

Dispenser for micro LED suspension and method of transferring micro LED

Provided is a dispenser for a solution including a reservoir configured to hold a suspension of micro light-emitting diodes (LEDs) suspended in a solvent; a stirrer configured to stir the suspension in the reservoir; a discharge path including a first valve configured to control outflow of the suspension from the reservoir; a filling path including a second valve configured to control inflow of the suspension into the reservoir; a hydraulic path including a third valve configured to control a pressure inside the reservoir; and a washing path connected to the first valve and configured to input a washing fluid for washing the discharge path into the discharge path, wherein the first valve includes a multi-way valve configured to selectively connect the discharge path to one of the reservoir and the washing path.