H01L27/11536

Semiconductor device and manufacturing method thereof

A semiconductor device includes a non-volatile memory. The non-volatile memory includes a first dielectric layer disposed on a substrate, a floating gate disposed on the dielectric layer, a control gate. A second dielectric layer is disposed between the floating gate and the control gate, having one of a silicon nitride layer, a silicon oxide layer and multilayers thereof. A third dielectric layer is disposed between the second dielectric layer and the control gate, and includes a dielectric material having a dielectric constant higher than silicon nitride.

NVM memory HKMG integration technology

The present disclosure relates to a method of forming an integrated circuit (IC). In some embodiments, a substrate is provided comprising a memory region and a logic region. A sacrificial logic gate electrode is formed within the logic region together with a control gate electrode or a select gate electrode within the memory region by patterning a control gate layer or a select gate layer. A first inter-layer dielectric layer is formed between the sacrificial logic gate electrode and the control gate electrode or the select gate electrode. A hard mask is formed over the first inter-layer dielectric layer to cover the memory region and to expose the sacrificial logic gate electrode within the logic region. The sacrificial logic gate electrode is replaced with a high-k gate dielectric layer and a metal layer to form a metal gate electrode within the logic region.

Method of making split gate non-volatile flash memory cell

A method of forming a non-volatile memory cell on a substrate having memory cell and logic circuit regions by forming a pair of conductive floating gates in the memory cell region, forming a first source region in the substrate between the pair of floating gates, forming a polysilicon layer in both regions, forming an oxide layer over the polysilicon layer in the logic circuit region, performing a chemical-mechanical polish of the polysilicon layer in the memory cell area leaving a first block of the polysilicon layer between the floating gates that is separated from remaining portions of the polysilicon layer, and selectively etching portions of the polysilicon layer to result in: second and third blocks of the polysilicon layer disposed in outer regions of the memory cell area, and a fourth block of the polysilicon layer in the logic circuit region.

Non-volatile memory device and method for manufacturing the same

A method for manufacturing a semiconductor device includes providing a semiconductor substrate having a core region and a peripheral region, and prior to forming a metal silicide in the core region, forming a sidewall layer on opposite sides of a gate structure of a core region device. The sidewall layer includes sequentially, from the inside out, a silicon oxide layer, a first silicon nitride layer, a first silicon nitride layer, a second silicon oxide layer, and a second silicon nitride layer, or the sidewall layer includes, from inside out, a first silicon nitride layer and a second silicon nitride layer. The sidewall layer having such structure ensures that the formed metal silicide has a good morphology in the core region to achieve good device performance.

SEMICONDUCTOR DEVICE AND METHOD OF MANUFACTURING THE SAME
20190051599 · 2019-02-14 ·

A semiconductor device comprises a peripheral circuit region provided on a first substrate and including circuit devices and a contact plug extending on the first substrate in a vertical direction; a memory cell region provided on a second substrate disposed above the first substrate and including memory cells; and a through insulating region penetrating through the second substrate on the contact plug and covering an upper surface of the contact plug.

Methods and structures for a split gate memory cell structure
10153349 · 2018-12-11 · ·

A method of forming a split gate memory cell structure using a substrate includes forming a gate stack comprising a select gate and a dielectric portion overlying the select gate. A charge storage layer is formed over the substrate including over the gate stack. A first sidewall spacer of conductive material is formed along a first sidewall of the gate stack extending past a top of the select gate. A second sidewall spacer of dielectric material is formed along the first sidewall on the first sidewall spacer. A portion of the first sidewall spacer is silicided using the second sidewall spacer as a mask whereby silicide does not extend to the charge storage layer.

Non-volatile memory and fabricating method thereof
10153289 · 2018-12-11 · ·

A non-volatile memory including a substrate, a charge storage structure, two metal gate structures, a first dielectric layer, a second dielectric layer, a first doped region and a second doped region is provided. The charge storage structure is disposed on the substrate. The metal gate structures are disposed on the substrate at two sides of the charge storage structure. The first dielectric layer is disposed between the charge storage structure and the metal gate structures. The second dielectric layer is disposed between the charge storage structure and the substrate. The first doped region and the second doped region are disposed in the substrate at sides of the metal gate structures away from the charge storage structure.

SEMICONDUCTOR DEVICE AND A METHOD OF FABRICATING THE SAME
20180294359 · 2018-10-11 ·

A semiconductor device includes a semiconductor substrate, a tunnel dielectric disposed on the semiconductor substrate, a floating gate disposed on the tunnel dielectric, a control gate disposed on the floating gate, and an insulation layer disposed between the floating gate and the control gate. The semiconductor device further includes a spacer continuously distributed on the sidewall surfaces of the floating gate and the control gate, and the spacer overlaps portions of the top surface of the floating gate.

FinFET based flash memory cell
10032891 · 2018-07-24 · ·

A method of manufacturing a flash memory cell is provided including forming a plurality of semiconductor fins on a semiconductor substrate, forming floating gates for a sub-set of the plurality of semiconductor fins and forming a first insulating layer between the plurality of semiconductor fins. The first insulating layer is recessed to a height less than the height of the plurality of semiconductor fins and sacrificial gates are formed over the sub-set of the plurality of semiconductor fins. A second insulating layer is formed between the sacrificial gates and, after that, the sacrificial gates are removed. Recesses are formed in the first insulating layer and sense gates and control gates are formed in the recesses for the sub-set of the plurality of semiconductor fins. The first and second insulating layers may be oxide layers.

Semiconductor device manufacturing method including implementing elements of memory unit and logic unit

A method for manufacturing a semiconductor device includes providing a substrate, a first conductor, a second conductor, a first dielectric, a second dielectric, and a designated region. The first conductor is positioned between the first dielectric and the substrate. The second conductor is positioned between the second dielectric and the substrate. The first designated region is positioned in the substrate. The method includes providing a conductive material layer, which completely covers the first dielectric and the second dielectric. The method includes partially removing the conductive material layer to form a third conductor and a fourth conductor. The first dielectric is positioned between the third conductor and the first conductor. The fourth conductor directly contacts the designated region. The method includes implementing a memory unit using the first conductor and the third conductor and includes implementing a logic unit using the second conductor and the designated region.