Patent classifications
H01L2924/10157
DISPLAY DEVICE AND METHOD OF MANUFACTURING THE SAME
A display device includes a display panel including a display area and a non-display area defined therein and including a plurality of signal pads overlapping the non-display area, an electronic component including a base layer with an upper surface and a lower surface, a plurality of driving pads disposed on the lower surface of the base layer, and a plurality of driving bumps respectively disposed on the plurality of driving pads, the plurality of driving bumps being respectively connected to the signal pads, and a filler disposed between the display panel and the electronic component. A first hole is defined in the upper surface of the base layer, and the first hole does not overlap the plurality of driving bumps in a plan view.
ELECTROLYTE FOR A SOLID-STATE BATTERY
Electrolyte for a solid-state battery includes a body having grains of inorganic material sintered to one another, where the grains include lithium. The body is thin, has little porosity by volume, and has high ionic conductivity.
DIRECT BONDED STACK STRUCTURES FOR INCREASED RELIABILITY AND IMPROVED YIELD IN MICROELECTRONICS
Direct bonded stack structures for increased reliability and improved yields in microelectronics are provided. Structural features and stack configurations are provided for memory modules and 3DICs to reduce defects in vertically stacked dies. Example processes alleviate warpage stresses between a thicker top die and direct bonded dies beneath it, for example. An etched surface on the top die may relieve warpage stresses. An example stack may include a compliant layer between dies. Another stack configuration replaces the top die with a layer of molding material to circumvent warpage stresses. An array of cavities on a bonding surface can alleviate stress forces. One or more stress balancing layers may also be created on a side of the top die or between other dies to alleviate or counter warpage. Rounding of edges can prevent stresses and pressure forces from being destructively transmitted through die and substrate layers. These measures may be applied together or in combinations in a single package.
DIE STACK STRUCTURE AND MANUFACTURING METHOD THEREOF
A die stack structure including a first die, an encapsulant, a redistribution layer and a second die is provided. The encapsulant laterally encapsulates the first die. The redistribution layer is disposed below the encapsulant, and electrically connected with the first die. The second die is disposed between the redistribution layer and the first die, wherein the first and second dies are electrically connected with each other, the second die comprises a body portion having a first side surface, a second side surface and a curved side surface therebetween, and the curved side surface connects the first side surface and the second side surface.
Electrolyte for a solid-state battery
Electrolyte for a solid-state battery includes a body having grains of inorganic material sintered to one another, where the grains include lithium. The body is thin, has little porosity by volume, and has high ionic conductivity.
SELECTIVE RELEASE AND TRANSFER OF MICRO DEVICES
A method of selectively transferring micro devices from a donor substrate to contact pads on a receiver substrate. The method may comprise: providing a donor substrate comprising the plurality of micro devices, transferring the plurality of micro devices to an intermediate substrate, aligning a selected set of micro devices on the intermediate substrate proximal to the system substrate, providing a photo-sensitive layer between the selected set of micro devices and the system receiver; turning on the selected micro devices, curing the photo-sensitive layer in between the selected set of micro devices and the system substrate by light emitted by the selected micro devices; and bonding the selected set of micro devices to the corresponding contact pads on the system substrate.
Display device and method of manufacturing the same
A display device includes a display panel including a display area and a non-display area defined therein and including a plurality of signal pads overlapping the non-display area, an electronic component including a base layer with an upper surface and a lower surface, a plurality of driving pads disposed on the lower surface of the base layer, and a plurality of driving bumps respectively disposed on the plurality of driving pads, the plurality of driving bumps being respectively connected to the signal pads, and a filler disposed between the display panel and the electronic component. A first hole is defined in the upper surface of the base layer, and the first hole does not overlap the plurality of driving bumps in a plan view.
Die stack structure and manufacturing method thereof
A die stack structure including a first die, an encapsulant, a redistribution layer and a second die is provided. The encapsulant laterally encapsulates the first die. The redistribution layer is disposed below the encapsulant, and electrically connected with the first die. The second die is disposed between the redistribution layer and the first die, wherein the first and second dies are electrically connected with each other, the second die comprises a body portion having a first side surface, a second side surface and a curved side surface therebetween, and the curved side surface connects the first side surface and the second side surface.
PACKAGE STRUCTURE AND METHOD OF FORMING THE SAME
A package structure and method of forming the same are provided. The package structure includes a semiconductor unit, a package component and an underfill layer. The semiconductor structure unit includes a first semiconductor structure and a second semiconductor structure disposed as side by side, and an isolation region laterally between the first semiconductor structure and the second semiconductor structure. The isolation region vertically extends from a top surface to a bottom surface of the semiconductor structure unit. The semiconductor structure unit is disposed on and electrically connected to the package component. The underfill layer is disposed to fill a space between the semiconductor structure unit and the package component.
SEMICONDUCTOR DEVICE AND METHOD OF MANUFACTURING THE SAME
A semiconductor device comprises a first chip and a second chip bonded via a plurality of bonding electrodes. The first chip comprises: a first substrate; a first semiconductor element; and a first bonding electrode which is one of the plurality of bonding electrodes and is electrically connected to the first semiconductor element. The second chip comprises: a second substrate; a second semiconductor element; and a second bonding electrode which is one of the plurality of bonding electrodes and is electrically connected to the second semiconductor element. The second substrate comprises: a pair of first regions which are provided in both end portions; and a pair of second regions which are provided in both end portions. Viewed from a third direction, portions provided in the first region and the second region of the second substrate do not overlap the first substrate.