Patent classifications
H01L21/7682
Conformal low temperature hermetic dielectric diffusion barriers
Conformal hermetic dielectric films suitable as dielectric diffusion barriers over 3D topography. In embodiments, the dielectric diffusion barrier includes a dielectric layer, such as a metal oxide, which can be deposited by atomic layer deposition (ALD) techniques with a conformality and density greater than can be achieved in a conventional silicon dioxide-based film deposited by a PECVD process for a thinner contiguous hermetic diffusion barrier. In further embodiments, the diffusion barrier is a multi-layered film including a high-k dielectric layer and a low-k or intermediate-k dielectric layer (e.g., a bi-layer) to reduce the dielectric constant of the diffusion barrier. In other embodiments a silicate of a high-k dielectric layer (e.g., a metal silicate) is formed to lower the k-value of the diffusion barrier by adjusting the silicon content of the silicate while maintaining high film conformality and density.
Self-forming barrier for use in air gap formation
An etch back air gap (EBAG) process is provided. The EBAG process includes forming an initial structure that includes a dielectric layer disposed on a substrate and a liner disposed to line a trench defined in the dielectric layer. The process further includes impregnating a metallic interconnect material with dopant materials, filling a remainder of the trench with the impregnated metallic interconnect materials to form an intermediate structure and drive-out annealing of the intermediate structure. The drive-out annealing of the intermediate structure serves to drive the dopant materials out of the impregnated metallic interconnect materials and thereby forms a chemical- and plasma-attack immune material.
SEMICONDUCTOR DEVICE STRUCTURE AND METHOD FOR FORMING THE SAME
A semiconductor device structure includes nanostructures formed over a substrate. The structure also includes a gate structure formed over and around the nanostructures. The structure also includes a spacer layer formed over a sidewall of the gate structure over the nanostructures. The structure also includes a source/drain epitaxial structure formed adjacent to the spacer layer. The structure also includes a contact structure formed over the source/drain epitaxial structure with an air spacer formed between the spacer layer and the contact structure.
INTERCONNECTION STRUCTURE AND METHODS OF FORMING THE SAME
An interconnection structure, along with methods of forming such, are described. The interconnection structure includes a first portion of a conductive layer, a second portion of the conductive layer disposed adjacent the first portion of the conductive layer, and a dielectric foam disposed between the first and second portions of the conductive layer. The dielectric foam includes fluid gaps filled with carbon dioxide gas.
Microelectronic devices having air gap structures integrated with interconnect for reduced parasitic capacitances
Embodiments of the invention include a microelectronic device that includes a substrate, at least one dielectric layer on the substrate and a plurality of conductive lines within the at least one dielectric layer. The microelectronic device also includes an air gap structure that is located below two or more of the plurality of conductive lines.
SEMICONDUCTOR DEVICE AND METHOD FOR FORMING SEMICONDUCTOR DEVICE
A semiconductor device and a method for forming the semiconductor device are provided. The method includes the following operations. A semiconductor substrate is provided, the semiconductor substrate includes multiple bit line structures disposed at intervals along a first direction; for each of the multiple bit line structures, surfaces of the bit line structure are filled with a conductive material to form a conductive layer covering the surfaces of the bit line structure. A top surface of the conductive layer is higher than a top surface of the bit line structure; and the conductive layer is etched to form multiple first conductive layers independent of each other and multiple second conductive layers, each of which is located on a respective one of the first conductive layers.
RF SWITCH DEVICE AND METHOD OF MANUFACTURING SAME
An RF switch device and a method of manufacturing the same are disclosed. More particularly, an RF switch device in a stacked configuration and a method of manufacturing the same seeking to reduce or eliminate a voltage imbalance, a condition in which different voltages are applied to different stages of the RF switch device, by forming air gaps on or over corresponding gate electrodes, in which each of the air gaps in a single stage has a different width.
Apparatus comprising aluminum interconnections, memory devices comprising interconnections, and related methods
An apparatus comprising a multilevel wiring structure comprising aluminum interconnections. The aluminum interconnections comprise a first portion, a second portion, and a third portion, where the second portion is between the first portion and the third portion. The third portion comprises a greater width in a lateral direction than a width in the lateral direction of the second portion. A memory device comprising a memory array comprising memory cells and a control logic component electrically connected to the memory array. At least one of the memory cells comprises a multilevel wiring structure comprising interconnect structures, where the interconnect structures comprise a first portion, a second portion adjacent to the first portion, and a third portion adjacent to the second portion. The third portion comprises a greater width in a lateral direction than a width in the lateral direction of the second portion. Related apparatus, memory devices, and methods are also disclosed.
Method for preparing semiconductor memory device with air gaps between conductive features
The present disclosure provides a method for preparing a semiconductor memory device with air gaps between conductive features. The method includes forming an isolation layer defining a first active region in a substrate; forming a first doped region in the first active region; forming a first word line buried in a first trench adjacent to the first doped region; and forming a high-level bit line contact positioned on the first doped region; forming a first air gap surrounding the high-level bit line contact. The forming of the first word line comprises: forming a lower electrode structure and an upper electrode structure on the lower electrode structure. The forming of the upper electrode structure comprises: forming a source layer substantially covering a sidewall of the first trench; forming a conductive layer on the source layer; and forming a work-function adjustment layer disposed between the source layer and the conductive layer.
SEMICONDUCTOR DEVICE, IMAGING DEVICE, AND MANUFACTURING APPARATUS
Provided is a semiconductor device, an imaging device, and a manufacturing apparatus, capable of providing a semiconductor substrate maintaining and improving insulating performance. A through hole that penetrates the semiconductor substrate, an electrode at the center of the through hole, and a space around the electrode are included. The through hole also penetrates an insulating film formed on the semiconductor substrate. A barrier metal is further included around the electrode. An insulating film is further included in the semiconductor substrate and the space. The semiconductor device has a multilayer structure, and the electrode connects wirings formed in different layers to each other.