H01L29/6684

INTEGRATED CIRCUIT, TRANSISTOR AND MEHTOD OF FABRICATING THE SAME

A transistor includes a gate electrode, a ferroelectric layer, a channel layer, a gas impermeable layer, a dielectric layer, a source line and a bit line. The ferroelectric layer is disposed on the gate electrode. The channel layer is disposed on the ferroelectric layer. The gas impermeable layer is disposed in between the channel layer and the gate electrode, and in contact with the ferroelectric layer. The dielectric layer is surrounding the ferroelectric layer and the channel layer, and in contact with the gas impermeable layer. The source line and the bit line are embedded in the dielectric layer and connected to the channel layer.

SEMICONDUCTOR DEVICE AND FABRICATION METHOD THEREOF

A semiconductor device is provided. The semiconductor device includes a gate layer, a semiconductor layer and a ferroelectric layer disposed between the gate layer and the semiconductor layer. The semiconductor layer includes a first material containing a Group III element, a rare-earth element and a Group VI element, the ferroelectric layer includes a second material containing a Group III element, a rare-earth element and a Group V element and the gate layer includes a third material containing a Group III element and a rare-earth element. A method of fabricating a semiconductor device is also provided.

TRANSISTOR, INTEGRATED CIRCUIT, AND MANUFACTURING METHOD OF TRANSISTOR

A transistor includes an insulating layer, a source region, a drain region, a channel layer, a ferroelectric layer, an interfacial layer, and a gate electrode. The source region and the drain region are respectively disposed on two opposite ends of the insulating layer. The channel layer is disposed on the insulating layer, the source region, and the drain region. The ferroelectric layer is disposed over the channel layer. The interfacial layer is sandwiched between the channel layer and the ferroelectric layer. The gate electrode is disposed on the ferroelectric layer.

Negative capacitance transistor with a diffusion blocking layer

A semiconductor device includes a substrate. The semiconductor device includes a dielectric layer disposed over a portion of the substrate. The semiconductor device includes a diffusion blocking layer disposed over the dielectric layer. The diffusion blocking layer and the dielectric layer have different material compositions. The semiconductor device includes a ferroelectric layer disposed over the diffusion blocking layer.

Cocktail layer over gate dielectric layer of FET FeRAM

In some embodiments, the present disclosure relates to an integrated chip that includes a gate electrode arranged over a substrate. A gate dielectric layer is arranged over the gate electrode, and an active structure is arranged over the gate dielectric layer. A source contact and a drain contact are arranged over the active structure. The active structure includes a stack of cocktail layers alternating with first active layers. The cocktail layers include a mixture of a first material and a second material. The first active layers include a third material that is different than the first and second materials. The bottommost layer of the active structure is one of the cocktail layers.

Ferroelectric tunnel junction devices with metal-FE interface layer and methods for forming the same

A memory device, transistor, and methods of making the same, the memory device including a memory device including: a ferroelectric (FE) structure including: a dielectric layer, an FE layer disposed on the dielectric layer, and an interface metal layer disposed on the FE layer, in which the interface metal layer comprises W, Mo, Ru, TaN, or a combination thereof to induce the FE layer to have an orthorhombic phase; and a top electrode layer disposed on the interface metal.

Integrated circuit structure and method of forming the same

A structure includes a semiconductor substrate, a gate structure, a source/drain feature, a source/drain contact, a dielectric layer, and a ferroelectric random access memory (FERAM) structure. The gate structure is on the semiconductor substrate. The source/drain feature is adjacent to the gate structure. The source/drain contact lands on the source/drain feature. The dielectric layer spans the source/drain contact. The FeRAM structure is partially embedded in the dielectric layer and includes a bottom electrode layer on the source/drain contact and having an U-shaped cross section, a ferroelectric layer conformally formed on the bottom electrode layer, and a top electrode layer over the ferroelectric layer.

INTEGRATED CHIP, FERROELECTRIC MEMORY DEVICE AND MANUFACTURING METHOD THEREOF

A ferroelectric memory device includes a substrate, a gate electrode, a ferroelectric layer, and a pair of source/drain electrodes. The gate electrode is disposed over the substrate. The ferroelectric layer at least covers two adjacent side surfaces of the gate electrode. The pair of source/drain electrodes is over the substrate and disposed on two opposite sides of the gate electrode respectively.

SEMICONDUCTOR FERROELECTRIC STORAGE TRANSISTOR AND METHOD FOR MANUFACTURING SAME
20180006130 · 2018-01-04 ·

Provided is a ferroelectric field effect transistor (FeFET) which has a wide memory window even if the ferroelectric film thickness is 200 nm or less, and which has excellent data retention characteristics, pulse rewriting endurance and the like. An FeFET which has a structure wherein an insulating body (11) and a gate electrode conductor (4) are sequentially laminated in this order on a semiconductor base (10) that has a source region (12) and a drain region (13). The insulating body (11) is configured by laminating a first insulating body (1) and a second insulating body (2) in this order on the base (10), and the second insulating body (2) is mainly composed of an oxide of strontium, calcium, bismuth and tantalum.

RECONFIGURABLE NANOWIRE FIELD EFFECT TRANSISTOR, A NANOWIRE ARRAY AND AN INTEGRATED CIRCUIT THEREOF

A reconfigurable field effect transistor (RFET) includes a nanowire, wherein the nanowire comprises two Schottky contacts, as well as two gate contacts partially enclosing the nanowire in cross section. An integrated circuit can be produced therefrom. The aim of producing CMOS circuits with enhanced functionality and a more compact design is achieved in that the nanowire is divided along the cross section thereof into two nanowire parts, wherein each nanowire part comprises a respective Schottky contact and a respective gate contact, and the two nanowire parts are connected electrically to one another via a common substrate and stand vertically on the substrate. In a nanowire-parts-array, between the nanowire parts, a respective top-gate contact and/or back-gate contact can be formed in a substrate defining a substrate plane.