Abstract:
A through-hole electrode substrate includes a substrate including a plurality of through-holes, a plurality of through-hole electrodes arranged within each of the plurality of through-holes, and a first insulation layer arranged on one surface of the substrate, wherein the first insulation layer includes a plurality of first openings which expose each of the plurality of through-holes, the plurality of through-holes includes a leaning through-hole leaning from one surface to the other surface of the substrate, and each of the plurality of first openings is arranged to match an open position of the leaning through-hole.
Abstract:
An inductor embedded in a printed wiring board includes a conductor extending in the thickness direction of a printed circuit board and a magnetic body that is in contact with the conductor with no gap therebetween. For example, the magnetic body is composed of ferrite having a cylindrical tubular shape. The conductor is composed of a copper film formed by plating on an inner peripheral surface of the cylindrical tubular ferrite. The inductor is inserted in the thickness direction of the printed wiring board.
Abstract:
A droplet discharge apparatus is used in a multilayer structure forming method of the invention. The multilayer structure forming method includes: discharging droplets of a first conductive material to form a first conductive material pattern on a surface of an object; baking the first conductive material pattern to form a wiring pattern; discharging droplets of a first insulating material including a first photo-curable material to form a first insulating material pattern bordering via holes on the wiring pattern; curing the first insulating material pattern to form a first insulating pattern bordering the via holes; making the surface of the object lyophilic; discharging droplets of a second insulating material including a second photo-curable material to form a second insulating material pattern that covers the wiring pattern and the surface of the object which has been made lyophilic, and surrounds the first insulating pattern; and curing the second insulating material pattern to form a second insulating pattern that surrounds the first insulating pattern. In addition, preferably, the first conductive material includes silver (Ag) nanoparticles.
Abstract:
A via structure configured for electrical and fluidic interconnection, and including an electrically conductive layer and an electrically insulating layer disposed on the electrically conductive layer.
Abstract:
A packaging substrate is disclosed, which comprises: a substrate body, wherein a surface thereof has a plurality of conductive pads and a solder mask disposed on the surface and having a plurality of openings to expose the conductive pads; dielectric rings disposed on the inner walls of the openings and extending to parts of the surface of the solder mask surrounding the openings; and metal bumps disposed in the openings and on the conductive pads exposed thereby, and combined with the dielectric rings.
Abstract:
A wiring glass substrate includes a glass substrate formed of glass and having a plurality of holes formed at predetermined positions, bumps so formed as to be connected to a conductive material filling the holes and wirings formed on a surface opposite to a surface having the bumps formed thereon and electrically connecting a plurality of connection terminals arranged in intervals different from intervals of the holes to the conductive material. The shape of the conductive material is porous and porous electrodes are bonded to the inner wall surfaces of the holes by an anchor effect to increase the strength of the glass substrate.
Abstract:
The circuit board is capable of tightly bonding a cable layer on a base member even if thermal expansion coefficients of the base member and the cable layer are significantly different. The circuit board comprises: the base member; and the cable layer being laminated on the base member with anchor patterns, which are electrically conductive layers formed on a surface of the base member.
Abstract:
The method of producing a substrate comprises the steps of: forming a through-hole in a base member; plating the base member so as to coat an inner face of the through-hole with a plated layer; applying photo resist on the base member; optically exposing and developing the photo resist so as to form a resist pattern, which coats at least a planar area of the through-hole; and etching an electrically conductive layer formed on the surface of the base member. The resist pattern is formed so as to separate an area of exposing the conductive layer a prescribed distance away from an edge of the through-hole, and the prescribed length is longer than a distance of etching a side face of the conductive layer in the etching step.
Abstract:
A plastic substrate includes resin and glass fibers. In an end surface of the substrate, interfaces between the glass fibers and the resin are covered with a solidified melt of the glass fibers.
Abstract:
A disclosed substrate is composed of a base member having a through-hole, a penetrating via provided in the through-hole, and a wiring connected to the penetrating via. The penetrating via includes a penetrating part having two ends on both sides of the base member, which is provided in the through-hole, a first protrusion protruding from the base member, which is formed on a first end of the penetrating part so as to be connected to the wiring, and a second protrusion protruding from the base member, which is formed on a second end of the penetrating part. The first protrusion and second protrusion are wider than a diameter of the through-hole.