Abstract:
Disclosed is a method of manufacturing a printed circuit board. The method of manufacturing a printed circuit board having a via for connecting one layer to another layer can include forming a circuit pattern on one surface of a carrier; processing a hole corresponding to the via on one surface of the carrier; compressing the surface of the carrier into one surface of an insulation body; removing the carrier; processing a via hole on the insulation body, corresponding to a position of the hole; and forming a conductive material in the via hole, to thereby easily process a hole for forming a via and have high design freedom.
Abstract:
A method of manufacturing a circuit board is disclosed. A method of manufacturing a circuit board that includes forming a first circuit pattern on the insulation layer of a carrier, in which an insulation layer and a first seed layer are stacked in order; stacking and pressing the carrier and an insulation board with the side of the carrier having the first circuit pattern facing the insulation board; removing the carrier to transfer the first circuit pattern and the insulation layer onto the insulation board; and forming a second circuit pattern on the insulation layer transferred to the insulation board, allows fine pitch circuit patterns to enable the manufacture of fine circuit patterns of high density on the board, and allows the manufacture of a multi-layer circuit board with a simple process.
Abstract:
An aspect of the present invention features a method for manufacturing a substrate having a cavity. The method can comprises: (a) forming an upper layer circuit on an upper seed layer; (b) laminating a dry film on a portion of the upper seed layer where a cavity is to be formed; (c) fabricating an upper outer layer by forming an insulation layer on top of the upper seed layer and on top and sides of the upper layer circuit; (d) stacking the upper outer layer on one side of a core layer where an internal circuit is formed; (e) removing the upper seed layer; and (f) forming the cavity by removing the dry film. The method for manufacturing a substrate with a cavity according to the present invention can reduce the total thickness of the substrate while the thickness of an insulation layer remains the same, by forming the insulation layer on sides of an external circuit.
Abstract:
A manufacturing method for rigid-flexible multi-layer printed circuit board including: a flexible substrate of which circuits are formed on both sides and which is bendable; a rigid substrate which is laminated on the flexible substrate and circuits are formed on both sides and a cavity within which a semiconductor chip is mounted is formed; and a bonding sheet adhering the flexible substrate and the rigid substrate and having a insulating property. When the same numbers of the semiconductor chips are mounted or the POP is embodied, the whole thickness of the package can be lower. Also, two more semiconductor chips can be mounted using the space as the thickness of the core layer, and the structure impossible when the number of semiconductor chip mounted on the bottom substrate becomes two from one in conventional technology can be embodied.
Abstract:
A method for manufacturing a substrate having a cavity is disclosed. The method comprises: (a) forming a first circuit pattern on one side of a seed layer by use of a first dry film; (b) laminating a second dry film on the first dry film, the thickness of the second dry film corresponding to the depth of the cavity to be formed; (c) laminating a dielectric layer on an area outside of where the cavity is to be formed, the thickness of the dielectric layer corresponding to the depth of the cavity to be formed; (d) laminating on the seed layer a copper foil laminated master having a second circuit pattern; and (e) forming the cavity by peeling off the first dry film and the second dry film after removing the seed layer. The method in accordance with the present invention can mount a plurality of integrated circuits by reducing the thickness of a substrate on a package on package.
Abstract:
A substrate for mounting a flip chip and a method of manufacturing the substrate method of manufacturing the substrate are disclosed. Using a method of manufacturing a substrate for flip chip mounting that includes providing an insulating layer, in which a circuit pattern is buried, and forming at least one bump pad shaped as an indentation by removing at least one portion of the circuit pattern, the bumps pads can be formed by removing portions of a circuit pattern in the shape of indentations, to prevent solder bumps from flowing to the insulating layer portions and reduce the pitch between bumps.
Abstract:
A Printed Circuit Board (PCB) having a weak magnetic field sensor of the present invention includes a base plate on which a first excitation circuit and a first detection circuit are formed on each of the sides thereof, soft magnetic core bodies laminated on the top and bottom of the base plate, respectively, and formed of a plurality of soft magnetic cores, and outer layers that are laminated on the soft magnetic core bodies, respectively, and on which a second excitation circuit and a second detection circuit connected to the first excitation circuit and the first detection circuit through via holes are formed so as to surround the soft magnetic cores, respectively. The present invention is characterized in that the soft magnetic cores, the excitation circuit and the detection circuit formed on one side of the base plate are perpendicular to the soft magnetic cores, the excitation circuit and the detection circuit formed on the other side of the base plate.
Abstract:
An optical pickup actuator and a method thereof includes a bobbin having a lens to scan a laser beam on a track of a disc, a winding coil moving the bobbin on the track in focusing and tracking directions, and an integrated circuit board used as the bobbin using a printed circuit board manufacturing technology and integrally formed with the winding coil in a monolithic body. The bobbin used with the optical pickup actuator includes the printed circuit board, a plurality of tracking circuit patterns formed on both surfaces of the PCB, a plurality of focusing circuit patterns formed on the both surfaces of the PCB, a plurality of via holes formed on the PCB to electrically connect the tracking circuit patterns and the focusing circuit patterns, an objective lens mounting unit formed on the PCB, and a connecting pad through which a power is supplied to the tracking and focusing circuit patterns.
Abstract:
An electronic component package and a manufacturing method thereof are disclosed. A method of manufacturing an electronic component package, which includes: forming a protrusion part on a first carrier board; stacking an insulation layer on the first carrier board and forming a circuit pattern, which includes a bonding pad and a solder ball pad, on the surface of the insulation layer; mounting an electronic component on the surface of the insulation layer and electrically connecting the electronic component and the bonding pad; and removing the first carrier board and the protrusion part, allows the mounting of the electronic component with just a single circuit pattern layer.
Abstract:
An aspect of the present invention features a method for manufacturing a substrate having a cavity. The method can comprises: (a) forming an upper layer circuit on an upper seed layer; (b) laminating a dry film on a portion of the-upper seed layer where a cavity is to be formed; (c) fabricating an upper outer layer by forming an insulation layer on top of the upper seed layer and on top and sides of the upper layer circuit; (d) stacking the upper outer layer on one side of a core layer where an internal circuit is formed; (e) removing the upper seed layer; and (f) forming the cavity by removing the dry film. The method for manufacturing a substrate with a cavity according to the present invention can reduce the total thickness of the substrate while the thickness of an insulation layer remains the same, by forming the insulation layer on sides of an external circuit.