Patent classifications
H01L2224/03001
Copper electroplating compositions and methods of electroplating copper on substrates
Copper electroplating compositions which include an imidazole compound enables the electroplating of copper having uniform morphology on substrates. The composition and methods of enable copper electroplating of photoresist defined features. Such features include pillars, bond pads and line space features.
COPPER ELECTROPLATING COMPOSITIONS AND METHODS OF ELECTROPLATING COPPER ON SUBSTRATES
Copper electroplating compositions which include an imidazole compound enables the electroplating of copper having uniform morphology on substrates. The composition and methods of enable copper electroplating of photoresist defined features. Such features include pillars, bond pads and line space features.
Semiconductor package device
A semiconductor device includes a die having a pad, a passivation disposed aver the die and a portion of the pad, a polymer disposed over the passivation, a molding surrounding the die and the polymer, and an interface between the polymer and the molding. The interface and the passivation define an angle less than or greater than approximately 90.
SEMICONDUCTOR DIE HAVING AN OPTICAL DETECTION MARKER AND METHOD OF PRODUCING THE SEMICONDUCTOR DIE
A semiconductor die includes: a semiconductor substrate; a first contact pad structure above the semiconductor substrate, the first contact pad structure including a metal contact pad configured for electrical contact and a metal layer adjoining an underside of the metal contact pad and jutting out beyond an edge of the metal contact pad; and a first optical detection marker in a periphery of the first contact pad structure and having a different contrast than the metal contact pad. The first optical detection marker includes a region of the metal layer that is adjacent to the edge of the metal contact pad and unobstructed by the metal contact pad so as to be optically visible in a plan view of the semiconductor die. A method of producing the semiconductor die is also described.
Chip package assembly with enhanced interconnects and method for fabricating the same
An integrated circuit interconnects are described herein that are suitable for forming integrated circuit chip packages. In one example, an integrated circuit interconnect is provided that includes a first substrate containing first circuitry, a first contact pad, a first pillar, a first pillar protection layer, a second substrate containing second circuitry, and a solder ball disposed on the first pillar and electrically and mechanically coupling the first substrate to the second substrate. The first contact pad is disposed on the first substrate and coupled to the first circuitry. The first pillar electrically disposed over the first contact pad. The first pillar protection layer is hydrophobic to solder and is disposed on a side surface of the first pillar.
Bond pad structure coupled to multiple interconnect conductive\ structures through trench in substrate
In some embodiments, the present disclosure relates to a device that includes an interconnect structure arranged on a frontside of a substrate. The interconnect structure includes interconnect conductive structures embedded within interconnect dielectric layers. A trench extends completely through the substrate to expose multiples ones of the interconnect conductive structures. A bond pad structure is arranged on a backside of the substrate and extends through the trench of the substrate to contact the multiple ones of the interconnect conductive structures. A bonding structure is arranged on the backside of the substrate and electrically contacts the bond pad structure.
SEMICONDUCTOR PACKAGE OR DEVICE WITH BARRIER LAYER
The present disclosure is directed to embodiments of a conductive structure on a conductive barrier layer that separates the conductive structure from a conductive layer on which the conductive barrier layer is present. A gap or crevice extends along respective surfaces of the conductive structure and along respective surfaces of one or more insulating layers. The gap or crevice separates the respective surfaces of the one or more insulating layers from the respective surfaces of the conductive structure. The gap or crevice provides clearance in which the conductive structure may expand into when exposed to changes in temperature. For example, when coupling a wire bond to the conductive structure, the conductive structure may increase in temperature and expand into the gap or crevice. However, even in the expanded state, respective surfaces of the conductive structure do not physically contact the respective surfaces of the one or more insulating layers.
Semiconductor device with composite conductive features and method for fabricating the same
The present application discloses a semiconductor device and a method for fabricating the semiconductor device. The semiconductor device includes a first semiconductor structure and a first connecting structure, wherein the first connecting structure includes a first connecting insulating layer positioned on the first semiconductor structure, two first conductive layers positioned in the first connecting insulating layer, and a first porous layer positioned between the two first conductive layers. A porosity of the first porous layer is between about 25% and about 100%. The first semiconductor structure includes a plurality of first composite conductive features, wherein at least one of the plurality of first composite conductive features includes a first protection liner, a first graphene liner in the first protection liner and a first core conductor in the first graphene liner.
COPPER ELECTROPLATING COMPOSITIONS AND METHODS OF ELECTROPLATING COPPER ON SUBSTRATES
Copper electroplating compositions which include a diimidazole compound enables the electroplating of copper having uniform morphology on substrates. The composition and methods of enable copper electroplating of photoresist defined features. Such features include pillars, bond pads and line space features.
COPPER ELECTROPLATING COMPOSITIONS AND METHODS OF ELECTROPLATING COPPER ON SUBSTRATES
Copper electroplating compositions which include an imidazole compound enables the electroplating of copper having uniform morphology on substrates. The composition and methods of enable copper electroplating of photoresist defined features. Such features include pillars, bond pads and line space features.