H10B12/10

Method of Maintaining the State of Semiconductor Memory Having Electrically Floating Body Transistor
20200013781 · 2020-01-09 ·

Methods of maintaining a state of a memory cell without interrupting access to the memory cell are provided, including applying a back bias to the cell to offset charge leakage out of a floating body of the cell, wherein a charge level of the floating body indicates a state of the memory cell; and accessing the cell.

Dual-port semiconductor memory and first in first out (FIFO) memory having electrically floating body transistor
10515968 · 2019-12-24 · ·

Multi-port semiconductor memory cells including a common floating body region configured to be charged to a level indicative of a memory state of the memory cell. The multi-port semiconductor memory cells include a plurality of gates and conductive regions interfacing with said floating body region. Arrays of memory cells and method of operating said memory arrays are disclosed for making a memory device.

Method for manufacturing semiconductor device and semiconductor device

The present disclosure discloses a semiconductor device manufacturing method and a semiconductor device, relating to the technical field of semiconductors. The method includes: providing a semiconductor substrate, the semiconductor substrate comprising a shallow trench and active areas isolated from the shallow trench; forming an oxygen-containing layer on exposed outer surfaces of the shallow trench and the active areas; filling a first sacrificial layer of a set height in the shallow trench comprising the oxygen-containing layer on its surface; forming an etch stop layer on an upper surface of the first sacrificial layer; removing the first sacrificial layer below the etch stop layer to form an air gap; filling an isolation layer on the etch stop layer in the shallow trench to form a shallow trench isolation(STI) structure containing the air gap; and etching the active areas and the (STI) structure to form wordline trenches.

Memory cells, memory cell arrays, methods of using and methods of making
11948637 · 2024-04-02 · ·

A semiconductor memory cell and arrays of memory cells are provided In at least one embodiment, a memory cell includes a substrate having a top surface, the substrate having a first conductivity type selected from a p-type conductivity type and an n-type conductivity type; a first region having a second conductivity type selected from the p-type and n-type conductivity types, the second conductivity type being different from the first conductivity type, the first region being formed in the substrate and exposed at the top surface; a second region having the second conductivity type, the second region being formed in the substrate, spaced apart from the first region and exposed at the top surface; a buried layer in the substrate below the first and second regions, spaced apart from the first and second regions and having the second conductivity type; a body region formed between the first and second regions and the buried layer, the body region having the first conductivity type; a gate positioned between the first and second regions and above the top surface; and a nonvolatile memory configured to store data upon transfer from the body region.

Memory cells, memory cell arrays, methods of using and methods of making
11948637 · 2024-04-02 · ·

A semiconductor memory cell and arrays of memory cells are provided In at least one embodiment, a memory cell includes a substrate having a top surface, the substrate having a first conductivity type selected from a p-type conductivity type and an n-type conductivity type; a first region having a second conductivity type selected from the p-type and n-type conductivity types, the second conductivity type being different from the first conductivity type, the first region being formed in the substrate and exposed at the top surface; a second region having the second conductivity type, the second region being formed in the substrate, spaced apart from the first region and exposed at the top surface; a buried layer in the substrate below the first and second regions, spaced apart from the first and second regions and having the second conductivity type; a body region formed between the first and second regions and the buried layer, the body region having the first conductivity type; a gate positioned between the first and second regions and above the top surface; and a nonvolatile memory configured to store data upon transfer from the body region.

SEMICONDUCTOR DEVICE, AND METHOD FOR MANUFACTURING THE SAME
20190378841 · 2019-12-12 ·

A semiconductor device and a method for manufacturing the semiconductor device are provided. The semiconductor device includes: a substrate: a drain region vertically disposed on the substrate; a body region vertically disposed on the drain region; a source region vertically disposed on the body region; a bit-line connected to the drain region and extending in a first direction; and a word-line connected to the source region and extending in a second direction that is different from the first direction. The drain region, the body region, and the source region together define a pillar extending in a third direction that is perpendicular to the first and second direction.

MEMORY CELLS, MEMORY CELL ARRAYS, METHODS OF USING AND METHODS OF MAKING
20190355419 · 2019-11-21 ·

A semiconductor memory cell and arrays of memory cells are provided In at least one embodiment, a memory cell includes a substrate having a top surface, the substrate having a first conductivity type selected from a p-type conductivity type and an n-type conductivity type; a first region having a second conductivity type selected from the p-type and n-type conductivity types, the second conductivity type being different from the first conductivity type, the first region being formed in the substrate and exposed at the top surface; a second region having the second conductivity type, the second region being formed in the substrate, spaced apart from the first region and exposed at the top surface; a buried layer in the substrate below the first and second regions, spaced apart from the first and second regions and having the second conductivity type; a body region formed between the first and second regions and the buried layer, the body region having the first conductivity type; a gate positioned between the first and second regions and above the top surface; and a nonvolatile memory configured to store data upon transfer from the body region.

Memory cell comprising first and second transistors and methods of operating

Semiconductor memory cells, array and methods of operating are disclosed. In one instance, a memory cell includes a bi-stable floating body transistor and an access device; wherein the bi-stable floating body transistor and the access device are electrically connected in series.

Memory cell comprising first and second transistors and methods of operating

Semiconductor memory cells, array and methods of operating are disclosed. In one instance, a memory cell includes a bi-stable floating body transistor and an access device; wherein the bi-stable floating body transistor and the access device are electrically connected in series.

MEMORY DEVICES, COMPONENTS THEREOF, AND RELATED METHODS AND SYSTEMS

Methods of processing a substrate and related structures and systems. Described methods comprise forming a distal dipole layer on to a distal material layer; forming a high-k dielectric on the distal dipole layer; and, forming a proximal dipole layer on the high-k dielectric.