H01L21/32051

Directional Deposition for Semiconductor Fabrication

A method includes providing a substrate having a surface such that a first hard mask layer is formed over the surface and a second hard mask layer is formed over the first hard mask layer, forming a first pattern in the second hard mask layer, where the first pattern includes a first mandrel oriented lengthwise in a first direction and a second mandrel oriented lengthwise in a second direction different from the first direction, and where the first mandrel has a top surface, a first sidewall, and a second sidewall opposite to the first sidewall, and depositing a material towards the first mandrel and the second mandrel such that a layer of the material is formed on the top surface and the first sidewall but not the second sidewall of the first mandrel.

BACKSIDE METAL PATTERNING DIE SINGULATION SYSTEM AND RELATED METHODS

Implementations of methods of singulating a plurality of die included in a substrate may include forming a plurality of die on a first side of a substrate, forming a backside metal layer on a second side of a substrate, applying a photoresist layer over the backside metal layer, patterning the photoresist layer along a die street of the substrate, and etching through the backside metal layer located in the die street of the substrate. The substrate may be exposed through the etch. The method may also include singulating the plurality of die included in the substrate through removing a substrate material in the die street.

Connector Formation Methods and Packaged Semiconductor Devices

Methods of forming connectors and packaged semiconductor devices are disclosed. In some embodiments, a connector is formed by forming a first photoresist layer over an interconnect structure, and patterning the first photoresist layer. The patterned first photoresist layer is used to form a first opening in an interconnect structure. The patterned first photoresist is removed, and a second photoresist layer is formed over the interconnect structure and in the first opening. The second photoresist layer is patterned to form a second opening over the interconnect structure in the first opening. The second opening is narrower than the first opening. At least one metal layer is plated through the patterned second photoresist layer to form the connector.

METHOD FOR FORMING SEMICONDUCTOR STRUCTURE

A method includes forming a metal layer over a substrate; forming a dielectric layer over the metal layer; performing a plasma treatment to a first portion of the dielectric layer, such that a carbon concentration of the first portion of the dielectric layer is lower than a carbon concentration of a second portion of the dielectric layer; selectively forming an inhibitor over the first portion of the dielectric layer; and selectively forming a hard mask over portions of the metal layer that is uncovered by the inhibitor.

SEMICONDUCTOR PACKAGE AND METHOD OF MANUFACTURING THE SAME
20170330839 · 2017-11-16 ·

Disclosed herein are a semiconductor package and a method of manufacturing the same. The semiconductor package according to embodiments of the present disclosure includes a wiring including a plurality of layers including an insulating layer and a wiring layer, a semiconductor chip mounted on the wiring and electrically connected to the wiring layer through a bonding pad, a cover member configured to cover side surfaces of the semiconductor chip and the wiring and be in contact with at least one wiring layer, and an encapsulant configured to seal the cover member. Accordingly, the cover member covers the semiconductor chip and is in contact with the wiring formed under the semiconductor chip, thereby reducing electromagnetic interference, minimizing noise between operations of the semiconductor package, and improving a signal speed

DEPOSITION OF METAL FILMS

Provided herein are low resistance metallization stack structures for logic and memory applications and related methods of fabrication. In some embodiments, thin metal oxynitride or metal nitride nucleation layers are deposited followed by deposition of a pure metal conductor. The nucleation layer is amorphous, which templates large pure metal film grain growth and reduced resistivity. Further, certain embodiments of the methods described below convert most or all of the metal oxynitride nucleation layer to a pure metal layer, further lowering the resistivity.

METHOD OF FORMING AN ELECTRODE ON A SUBSTRATE AND A SEMICONDUCTOR DEVICE STRUCTURE INCLUDING AN ELECTRODE

A method of forming an electrode on a substrate is disclosed. The method may include: contacting the substrate with a first vapor phase reactant comprising a titanium tetraiodide (TiI.sub.4) precursor; contacting the substrate with a second vapor phase reactant comprising a nitrogen precursor; and depositing a titanium nitride layer over a surface of the substrate thereby forming the electrode; wherein the titanium nitride layer has an electrical resistivity of less than 400 μΩ-cm. Related semiconductor device structures including a titanium nitride electrode deposited by the methods of the disclosure are also provided.

PACKAGED SEMICONDUCTOR DEVICES WITH WIRELESS CHARGING MEANS

A method for packaging a semiconductor device used in an electronic apparatus having wireless charging function is provided. The method includes coupling a semiconductor device and a coil over a redistribution layer. The method further includes forming a molding material over the semiconductor device and the coil. The method also includes forming a conductive metal slot over the molding material. An opening is formed on the conductive metal slot for allowing magnetic flux to pass through.

ISOLATION STRUCTURES FOR CIRCUITS SHARING A SUBSTRATE
20170317166 · 2017-11-02 ·

Structures that include isolation structures and methods for fabricating isolation structures. First and second trenches are etched in a substrate and surround a device region in which an integrated circuit is formed. A dielectric material is deposited in the first trench to define a first isolation structure, and an electrical conductor is deposited in the second trench to define a second isolation structure.

High κ gate stack on III-V compound semiconductors

A method of forming a high k gate stack on a surface of a III-V compound semiconductor, such GaAs, is provided. The method includes subjecting a III-V compound semiconductor material to a precleaning process which removes native oxides from a surface of the III-V compound semiconductor material; forming a semiconductor, e.g., amorphous Si, layer in-situ on the cleaned surface of the III-V compound semiconductor material; and forming a dielectric material having a dielectric constant that is greater than silicon dioxide on the semiconducting layer. In some embodiments, the semiconducting layer is partially or completely converted into a layer including at least a surface layer that is comprised of AO.sub.xN.sub.y prior to forming the dielectric material. In accordance with the present invention, A is a semiconducting material, preferably Si, x is 0 to 1, y is 0 to 1 and x and y are both not zero.