H05K3/4608

Method for integrating power chips and power electronics modules
10950513 · 2021-03-16 · ·

The method comprises the steps of 1) producing first and second blanks (EB1, EB2) by laminating insulating and conductive inner layers (PP, CP, E1) on copper plates forming a base (MB1, MB2), at least one electronic chip (MT, MD) being sandwiched between the blanks, said blanks being produced such that their upper lamination surfaces have matching profiles, 2) stacking and fitting the blanks via their matching profiles, and 3) press-fitting the blanks to form a laminated sub-assembly for an integrated power electronics device. The method uses IMS-type techniques.

Circuit board

A circuit board includes a core layer including a plurality of metal layers laminated one over another, a bottommost metal layer of the plurality of metal layers being thickest, and a topmost metal layer of the plurality of metal layer being thinnest; an upper insulating layer and an upper conductive pattern provided over a top surface of the core layer; and a lower insulating layer and a lower conductive pattern provided below a bottom surface of the core layer, wherein the topmost metal layer of the core metal layer is patterned to have a prescribed shaped section that serves as wiring and that is connected to the upper conductive pattern, wherein a metal ratio that is defined as a ratio of an area that is formed of metal relative to an entire area in a plan view is higher in the bottommost metal layer than in the topmost metal layer.

INSULATED METAL SUBSTRATE
20210045239 · 2021-02-11 ·

An insulated metal substrate (IMS) includes a metal substrate, an insulating layer, a plastic frame, and a plurality of conductive metal pads. The insulating layer is located on the metal substrate. The plastic frame is located on the insulating layer and has a plurality of aperture areas. The conductive metal pads are located on the insulating layer and are respectively located in the aperture areas, and the conductive metal pads have sidewalls are in contact with the plastic frame.

MANUFACTURING METHOD OF INSULATED METAL SUBSTRATE
20210045240 · 2021-02-11 ·

An insulated metal substrate (IMS) includes a metal substrate, an insulating layer, a plastic frame, and a plurality of conductive metal pads. The insulating layer is located on the metal substrate. The plastic frame is located on the insulating layer and has a plurality of aperture areas. The conductive metal pads are located on the insulating layer and are respectively located in the aperture areas, and the conductive metal pads have sidewalls are in contact with the plastic frame.

Multilayer board and manufacturing method of the same

A manufacturing method of a multilayer board includes: forming a metal core layer including a main body, an island portion, and four connection portions, the island portion having a substantially rectangle shape and being located in an opening formed in the main body, the opening having a substantially rectangle shape, the four connection portions connecting side surfaces of four corners of the island portion or side surfaces of vicinities of the four corners of the island portion to a side surface of the main body; forming a first insulating layer on the metal core layer and in the opening; and forming, in the first insulating layer, a hole reaching each of the four connection portions and removing at least a part of each of the four connection portions through the hole to electrically separate the main body and the island portion from each other

Component carrier comprising a photo-imageable dielectric and method of manufacturing the same

A method of manufacturing a component carrier is disclosed. The method includes forming a stack having at least one electrically conductive layer structure and/or at least one electrically insulating layer structure; patterning a front side of the stack using a first photo-imageable dielectric; and patterning a back side of the stack. A component carrier is also disclosed.

Printed circuit board
11057993 · 2021-07-06 · ·

A printed circuit board is disclosed. The printed circuit board includes a first substrate portion, and a second substrate portion connected to the first substrate portion and having a flexible insulating layer bendable with respect to the first substrate portion. The second substrate portion includes a block member disposed in the flexible insulating layer and a circuit pattern disposed on a region of the flexible insulating layer, in which the block member is embedded.

Method of manufacturing circuit board with embedded conductive circuits

A method for manufacturing a circuit board with embedded conductive circuits includes providing a first circuit substrate having a first support board and a first peelable film, providing a second circuit substrate having a second support board and a second peelable film, providing an insulating layer to obtain an intermediate body, pressing the intermediate body, and removing the first support board, the first peelable film, the second support board, and the second peelable film. The first circuit substrate includes a first circuit layer. The second circuit substrate includes a second circuit layer. The first circuit layer is electrically coupled to the second circuit layer through the insulating layer.

PRINTED CIRCUIT BOARD
20210022243 · 2021-01-21 ·

A printed circuit board is disclosed. The printed circuit board includes a first substrate portion, and a second substrate portion connected to the first substrate portion and having a flexible insulating layer bendable with respect to the first substrate portion. The second substrate portion includes a block member disposed in the flexible insulating layer and a circuit pattern disposed on a region of the flexible insulating layer, in which the block member is embedded.

SUBSTRATE FOR MOUNTING ELECTRONIC ELEMENT, ELECTRONIC DEVICE, AND ELECTRONIC MODULE

A substrate for mounting electronic element includes: a first substrate including a first surface and a second surface opposite to the first surface; a second substrate including a third surface and a fourth surface opposite to the third surface; and heat dissipation bodies each including a fifth surface and a sixth surface opposite to the fifth surface. The first substrate includes at least one mounting portion for at least one electronic element at the first surface. Heat conduction of the heat dissipation bodies in a direction perpendicular to a longitudinal direction of the at least one mounting portion and perpendicular to a direction along opposite sides of the second substrate is greater than heat conduction of the heat dissipation bodies in the longitudinal direction of the at least one mounting portion and in the direction along opposite sides of the second substrate in a transparent plan view of the substrate.