H01L2224/05005

Method of forming brass-coated metals in flip-chip redistribution layers

A method for manufacturing a package includes positioning a copper layer above a die. A zinc layer is positioned on the copper layer. The zinc and copper layers are then heated to produce a brass layer, the brass layer abutting the copper layer. Further, a polymer layer is positioned abutting the brass layer.

Semiconductor structure

A semiconductor structure includes a conductive line, a pad layer, and a barrier layer. The conductive line is embedded in a multi-level interconnect structure. The pad layer is over the conductive line. The barrier layer is between the conductive line and the pad layer. The pad layer is electrically connected to the conductive line through the barrier layer, and the barrier layer includes a first poly-crystalline layer and a second poly-crystalline layer. A boundary is between the first poly-crystalline layer and the second poly-crystalline layer.

Semiconductor structure

A semiconductor structure includes a conductive line, a pad layer, and a barrier layer. The conductive line is embedded in a multi-level interconnect structure. The pad layer is over the conductive line. The barrier layer is between the conductive line and the pad layer. The pad layer is electrically connected to the conductive line through the barrier layer, and the barrier layer includes a first poly-crystalline layer and a second poly-crystalline layer. A boundary is between the first poly-crystalline layer and the second poly-crystalline layer.

CONDUCTIVE BARRIER DIRECT HYBRID BONDING
20190237419 · 2019-08-01 ·

A method for forming a direct hybrid bond and a device resulting from a direct hybrid bond including a first substrate having a first set of metallic bonding pads, preferably connected to a device or circuit, capped by a conductive barrier, and having a first non-metallic region adjacent to the metallic bonding pads on the first substrate, a second substrate having a second set of metallic bonding pads capped by a second conductive barrier, aligned with the first set of metallic bonding pads, preferably connected to a device or circuit, and having a second non-metallic region adjacent to the metallic bonding pads on the second substrate, and a contact-bonded interface between the first and second set of metallic bonding pads capped by conductive barriers formed by contact bonding of the first non-metallic region to the second non-metallic region.

CHIP ASSEMBLIES EMPLOYING SOLDER BONDS TO BACK-SIDE LANDS INCLUDING AN ELECTROLYTIC NICKEL LAYER

A stacked-chip assembly including a plurality of IC chips or die that are stacked, and electrically coupled by solder bonds. In accordance with some embodiments described further below, the solder bonds are to contact a back-side land that includes a diffusion barrier to reduce intermetallic formation and/or other solder-induced reliability issues. The back-side land may include an electrolytic nickel (Ni) barrier layer separating solder from a back-side redistribution layer trace. This electrolytic Ni may be of high purity, which at least in part, may enable the backside metallization stack to be of minimal thickness while still functioning as a diffusion barrier. In some embodiments, the back-side land composition and architecture is distinct from a front-side land composition and/or architecture.

CHIP ASSEMBLIES EMPLOYING SOLDER BONDS TO BACK-SIDE LANDS INCLUDING AN ELECTROLYTIC NICKEL LAYER

A stacked-chip assembly including a plurality of IC chips or die that are stacked, and electrically coupled by solder bonds. In accordance with some embodiments described further below, the solder bonds are to contact a back-side land that includes a diffusion barrier to reduce intermetallic formation and/or other solder-induced reliability issues. The back-side land may include an electrolytic nickel (Ni) barrier layer separating solder from a back-side redistribution layer trace. This electrolytic Ni may be of high purity, which at least in part, may enable the backside metallization stack to be of minimal thickness while still functioning as a diffusion barrier. In some embodiments, the back-side land composition and architecture is distinct from a front-side land composition and/or architecture.

Methods of forming microelectronic structures having a patterned surface structure
10354966 · 2019-07-16 · ·

A connector structure and a manufacturing method thereof are provided. The connector structure includes a semiconductor substrate, a metal layer, a passivation layer, and a conductive structure. The metal layer is over the semiconductor substrate. The passivation layer is over the metal layer and includes an opening. The conductive structure is in contact with the metal layer in a patterned surface structure of the conductive structure through the opening of the passivation layer.

Semiconductor device and manufacturing method thereof

A semiconductor device is provided with a semiconductor substrate. A semiconductor element is provided on a first face of the semiconductor substrate. An energy absorbing film is provided on the first face, to absorb optical energy to generate heat. A first insulation film is provided on the semiconductor element and on the energy absorbing film. A second insulation film is provided on a second face of the semiconductor substrate, the second face being opposite to the first face. A first modified layer is provided on a side face of the semiconductor substrate, the side face being located between an outer edge of the first face and an outer edge of the second face. A second modified layer is provided on the side face between the energy absorbing film and the first modified layer. A cleavage face is provided on the side face between the first and second modified layers.

Method of yield prejudgment and bump re-assignment and computer readable storage medium

A method of yield prejudgment and bump re-assignment for a die is provided. The die includes a plurality of areas. Each area is electrically connected to a substrate through a corresponding bump. The successful-connection probability of each area is prejudged. The die is divided into a signal region and a short-circuit region according to the successful-connection probabilities. The positions of the bumps are arranged so that signal bumps are disposed in the signal region and power bumps are disposed in the short region.

Semiconductor packages and methods of fabrication thereof

In accordance with an embodiment of the present invention, a semiconductor device includes a semiconductor chip having a first side and an opposite second side, and a chip contact pad disposed on the first side of the semiconductor chip. A dielectric liner is disposed over the semiconductor chip. The dielectric liner includes a plurality of openings over the chip contact pad. A interconnect contacts the semiconductor chip through the plurality of openings at the chip contact pad.