H01L21/76852

Semiconductor device structure and methods of forming the same

An interconnection structure, along with methods of forming such, are described. The structure includes a first conductive feature having a two-dimensional material layer, a second conductive feature disposed over the first conductive feature, and a dielectric material disposed adjacent the first and second conductive features. The dielectric material extends from a level of a bottom of the first conductive feature to a level of a top of the second conductive feature.

ALUMINUM OXIDE FOR THERMAL MANAGEMENT OR ADHESION
20170330795 · 2017-11-16 ·

Embodiments herein relate to a package using aluminum oxide as an adhesion and high-thermal conductivity layer with a buildup layer having a first side and a second side opposite the first side, a first trace applied to the first side of the buildup layer, an aluminum oxide layer coupled with the first trace and an exposed area of the first side of the buildup layer, a lamination buildup layer coupled with the aluminum oxide layer on a side of the aluminum oxide layer opposite the buildup layer, wherein the lamination buildup layer includes one or more vias to the trace, and a seed layer coupled with the lamination buildup layer. Other embodiments may be described and/or claimed.

SEMICONDUCTOR DEVICE WITH CONTACT PAD AND METHOD OF MAKING
20220359276 · 2022-11-10 ·

A semiconductor structure includes a conductive structure over a first passivation layer. The semiconductor structure further includes a second passivation layer over the conductive structure and the first passivation layer. The second passivation layer includes a first oxide film extending along a top surface of the first passivation layer, sidewalls and a top surface of the conductive structure, wherein a top surface of the first oxide film is planar. The second passivation layer further includes a second oxide film over a top surface of the first oxide film and a top surface of the conductive structure, wherein a top surface of the second oxide film is planar. The second passivation layer further includes a third oxide film extending along a top surface of the second oxide film, the sidewalls and the top surface of the conductive structure, wherein a top surface of the third oxide film is curved.

SEMICONDUCTOR DEVICE WITH SELF-ALIGNED CONDUCTIVE FEATURES

A semiconductor device structure is provided. The semiconductor device structure includes a semiconductor substrate and a conductive line over the semiconductor substrate. The conductive line has a barrier region surrounding an inner portion of the conductive line, and the barrier region has a greater dopant concentration than the inner portion. The semiconductor device structure also includes a conductive via on the conductive line. The semiconductor device structure further includes a dielectric layer over the semiconductor substrate. The dielectric layer surrounds the conductive line and the conductive via.

Fully aligned via for interconnect

A fully aligned via interconnect structure and techniques for formation thereof using subtractive metal patterning are provided. In one aspect, an interconnect structure includes: metal lines Mx−1; metal lines Mx disposed over the metal lines Mx−1; and at least one via Vx−1 fully aligned between the metal lines Mx−1 and the metal lines Mx, wherein a top surface of at least one of the metal lines Mx−1 has a stepped profile. In another aspect, another interconnect structure includes: metal lines Mx−1; metal lines Mx disposed over the metal lines Mx−1; at least one via Vx−1 fully aligned between the metal lines Mx−1 and the metal lines Mx; and sidewall spacers alongside the metal lines Mx. A method of forming an interconnect structure is also provided.

SEMICONDUCTOR DEVICE HAVING A DUAL MATERIAL REDISTRIBUTION LINE
20220352022 · 2022-11-03 ·

A semiconductor device includes a first conductive element electrically connected to an interconnect structure, wherein the first conductive element includes a first conductive material. The semiconductor device further includes an RDL over the first conductive element and electrically connected to the first conductive element, wherein the RDL includes a second conductive material different from the first conductive material. The semiconductor device further includes a passivation layer over the RDL, wherein a top portion of a sidewall of the second passivation layer includes a convex curve protruding in a direction parallel to a top surface of the interconnect structure, a width of the top portion at a bottom of the convex curve is less than a width of the top portion at a middle of the convex curve, and the middle of the convex curve is above the bottom of the convex curve.

INTERCONNECTION STRUCTURE OF INTEGRATED CIRCUIT SEMICONDUCTOR DEVICE
20220352071 · 2022-11-03 · ·

An interconnection structure of an integrated circuit semiconductor device includes: a first conductive layer on a semiconductor substrate; an interlayer insulating layer on the first conductive layer and including a trench and a via hole; a via layer in the via hole, the via layer penetrating the interlayer insulating layer through a bottom of the trench to contact the first conductive layer, the via layer including a protrusion protruding to a height greater than a height of the trench; a barrier layer selectively on the bottom and sidewalls of the trench and on sidewalls of the via layer in the trench; a cap layer on a surface of the via layer; and a second conductive layer in the trench on the barrier layer. The cap layer is electrically connected to the first conductive layer through the via layer.

SUBTRACTIVELY PATTERNED INTERCONNECT STRUCTURES FOR INTEGRATED CIRCUITS

IC interconnect structures including subtractively patterned features. Feature ends may be defined through multiple patterning of multiple cap materials for reduced misregistration. Subtractively patterned features may be lines integrated with damascene vias or with subtractively patterned vias, or may be vias integrated with damascene lines or with subtractively patterned lines. Subtractively patterned vias may be deposited as part of a planar metal layer and defined currently with interconnect lines. Subtractively patterned features may be integrated with air gap isolation structures. Subtractively patterned features may be include a barrier material on the bottom, top, or sidewall. A bottom barrier of a subtractively patterned features may be deposited with an area selective technique to be absent from an underlying interconnect feature. A barrier of a subtractively patterned feature may comprise graphene or a chalcogenide of a metal in the feature or in a seed layer.

Selective sputtering with light mass ions to sharpen sidewall of subtractively patterned conductive metal layer

A dielectric layer is formed on a silicon substrate. A liner layer is formed on the dielectric layer. A conductive metal layer is formed on the liner layer. A first sputter etching operation is performed on the conductive metal layer, wherein the first sputter etching operation uses a first type of etch chemistry configured to subtractively pattern the conductive metal layer for a first etching time period resulting in the remaining conductive metal layer having respective sidewalls that are not substantially vertical. A second sputter etching operation is performed on the remaining conductive metal layer, wherein the second sputter etching operation uses a second type of etch chemistry configured to further subtractively pattern the remaining conductive metal layer for a second etching time period resulting in the remaining conductive metal layer having respective sidewalls that are substantially vertical. The conductive metal layer remaining after the second sputter etching operation comprises a metal interconnect.

SEMICONDUCTOR DEVICE WITH AIR GAP
20230180462 · 2023-06-08 ·

The present application discloses a semiconductor device and a method for fabricating the semiconductor device. The semiconductor device includes a substrate; a drain region positioned in the substrate; a common source region positioned in the substrate and opposing to the drain region; a bit line structure including a bit line conductive layer positioned on the substrate and electrically coupled to the common source region; a cell contact positioned on the substrate, adjacent to the bit line structure, and electrically connected to the drain region; a landing pad positioned above the bit line conductive layer and electrically connected to the cell contact; and an air gap positioned between the landing pad and the bit line conductive layer.