Patent classifications
H10D1/00
Process for making and using a semiconductor wafer containing first and second DOEs of standard cell compatible, NCEM-enabled fill cells, with the first DOE including snake open configured fill cells, and the second DOE including metal island open configured fill cells
- Stephen Lam ,
- Dennis Ciplickas ,
- Tomasz Brozek ,
- Jeremy Cheng ,
- Simone Comensoli ,
- Indranil De ,
- Kelvin Doong ,
- Hans Eisenmann ,
- Timothy Fiscus ,
- Jonathan Haigh ,
- Christopher Hess ,
- John Kibarian ,
- Sherry Lee ,
- Marci Liao ,
- Sheng-Che Lin ,
- Hideki Matsuhashi ,
- Kimon Michaels ,
- Conor O'Sullivan ,
- Markus Rauscher ,
- Vyacheslav Rovner ,
- Andrzej Strojwas ,
- Marcin Strojwas ,
- Carl Taylor ,
- Rakesh Vallishayee ,
- Larg Weiland ,
- Nobuharu Yokoyama
A process for making and using a semiconductor wafer includes instantiating first and second designs of experiments (DOES), each comprised of at least two fill cells. The fill cells contain structures configured to obtain in-line data via non-contact electrical measurements (NCEM). The first DOE contains fill cells configured to enable non-contact (NC) detection of snake opens, and the second DOE contains fill cells configured to enable NC detection of metal island opens. The process may further include obtaining NC measurements from the first and/or second DOE(s) and using such measurements, at least in part, to selectively perform additional processing, metrology or inspection steps on the wafer, and/or on other wafer(s) currently being manufactured.
Integrated circuit containing standard logic cells and library-compatible, NCEM-enabled fill cells, including at least chamfer-short-configured, AACNT-short-configured, GATECNT-short-configured, and TS-short-configured, NCEM-enabled fill cells
- Stephen Lam ,
- Dennis Ciplickas ,
- Tomasz Brozek ,
- Jeremy Cheng ,
- Simone Comensoli ,
- Indranil De ,
- Kelvin Doong ,
- Hans Eisenmann ,
- Timothy Fiscus ,
- Jonathan Haigh ,
- Christopher Hess ,
- John Kibarian ,
- Sherry Lee ,
- Marci Liao ,
- Sheng-Che Lin ,
- Hideki Matsuhashi ,
- Kimon Michaels ,
- Conor O'Sullivan ,
- Markus Rauscher ,
- Vyacheslav Rovner ,
- Andrzej Strojwas ,
- Marcin Strojwas ,
- Carl Taylor ,
- Rakesh Vallishayee ,
- Larg Weiland ,
- Nobuharu Yokoyama
An IC includes logic cells, selected from a standard cell library, and fill cells, configured for compatibility with the standard logic cells. The fill cells contain structures configured to obtain in-line data via non-contact electrical measurements (NCEM). The IC includes such NCEM-enabled fill cells configured to enable detection and/or measurement of a variety of short-circuit failure modes, including at least one chamfer-short-related failure mode, one AACNT-short-related failure mode, one GATECNT-short-related failure mode, and one TS-short-related failure mode.
Nonvolatile semiconductor memory device and method of manufacturing the same
This nonvolatile semiconductor memory device includes: a memory cell array including a memory cell; a wiring part connecting the memory cell array to an external circuit; and a transistor that connects the wiring part and the external circuit, the transistor including: a first insulating layer including a first region, a second region, and a third region, the second and third regions being disposed on both sides of the first region, and a height of an upper surface of the first region being lower than those of the second region and the third region; a semiconductor layer disposed along upper surfaces of the first region, the second region, and the third region; and a gate electrode layer disposed via the semiconductor layer and a gate insulating film, on an upper part of the second region.
METHOD OF MANUFACTURING SEMICONDUCTOR DEVICE
In accordance with an embodiment of the present disclosure, a method of manufacturing a semiconductor device may include forming an opening passing-through a multi-layer stack, forming a channel layer on and along a sidewall of the opening, forming a conductive layer on and along a sidewall of the channel layer, and applying a laser to the conductive layer to transfer a heat from the conductive layer to the channel layer to heat-treat the channel layer using the heat.
3D CROSS-POINT MEMORY MANUFACTURING PROCESS HAVING LIMITED LITHOGRAPHY STEPS
The present disclosure generally relates to semiconductor manufactured memory devices and methods of manufacture thereof. More specifically, methods for forming a plurality of layers of a 3D cross-point memory array without the need for lithographic patterning at each layer are disclosed. The method includes depositing a patterned hard mask with a plurality of first trenches over a plurality of layers. Each of the plurality of first trenches is etched all the way through the plurality of layers. Then the hard mask is patterned with a plurality of second trenches, which runs orthogonal to the plurality of first trenches. Selective undercut etching is then used to remove each of the plurality of layers except the orthogonal metal layers from the plurality of second trenches, resulting in a 3D cross-point array with memory material only at the intersections of the orthogonal metal layers.
3D CROSS-POINT MEMORY MANUFACTURING PROCESS HAVING LIMITED LITHOGRAPHY STEPS
The present disclosure generally relates to semiconductor manufactured memory devices and methods of manufacture thereof. More specifically, methods for forming a plurality of layers of a 3D cross-point memory array without the need for lithographic patterning at each layer are disclosed. The method includes depositing a patterned hard mask with a plurality of first trenches over a plurality of layers. Each of the plurality of first trenches is etched all the way through the plurality of layers. Then the hard mask is patterned with a plurality of second trenches, which runs orthogonal to the plurality of first trenches. Selective undercut etching is then used to remove each of the plurality of layers except the orthogonal metal layers from the plurality of second trenches, resulting in a 3D cross-point array with memory material only at the intersections of the orthogonal metal layers.
Method for forming spacers for a transitor gate
A method for forming spacers of a gate of a field-effect transistor is provided, including at least one step of forming a protective layer covering the gate; depositing a layer comprising carbon, said layer being disposed distant from said transistor; modifying the protective layer to form a modified protective layer; forming a protective film on the layer comprising carbon; removing the protective film on surfaces of the protective film that are perpendicular to a main implantation direction; selectively removing the layer comprising carbon; and at least one step of selectively removing the modified protective layer.
Composite wafer semiconductor devices using offset via arrangements and methods of fabricating the same
A device includes a first integrated circuit substrate including a plurality of first metal layers interconnected by first vias and a second integrated circuit substrate on the first integrated circuit substrate and including second metal layers interconnected by second vias. An insulation layer is disposed between the first and second substrates and a connection region is disposed in the insulation layer and electrically connects a first one of the first metal layers to a first one of the second metal layers. The device further includes a bonding pad on the second substrate and a through via extending from the bonding pad and into the second to contact a second one of the second metal layers. The through via is positioned so as to not overlap at least one of the first vias, the second vias and the connection region. Methods of fabricating such device are also described.
Integrated circuit containing first and second DOEs of standard cell compatible, NCEM-enabled fill cells, with the first DOE including snake open configured fill cells, and the second DOE including metal island open configured fill cells
- Stephen Lam ,
- Dennis Ciplickas ,
- Tomasz Brozek ,
- Jeremy Cheng ,
- Simone Comensoli ,
- Indranil De ,
- Kelvin Doong ,
- Hans Eisenmann ,
- Timothy Fiscus ,
- Jonathan Haigh ,
- Christopher Hess ,
- John Kibarian ,
- Sherry Lee ,
- Marci Liao ,
- Sheng-Che Lin ,
- Hideki Matsuhashi ,
- Kimon Michaels ,
- Conor O'Sullivan ,
- Markus Rauscher ,
- Vyacheslav Rovner ,
- Andrzej Strojwas ,
- Marcin Strojwas ,
- Carl Taylor ,
- Rakesh Vallishayee ,
- Larg Weiland ,
- Nobuharu Yokoyama
An IC includes first and second designs of experiments (DOEs), each comprised of at least two fill cells. The fill cells contain structures configured to obtain in-line data via non-contact electrical measurements (NCEM). The first DOE contains fill cells configured to enable non-contact (NC) detection of snake opens, and the second DOE contains fill cells configured to enable NC detection of metal island opens.
Integrated circuit containing standard logic cells and library-compatible, NCEM-enabled fill cells, including at least via-open-configured, TS-short-configured, metal-short configured, and AA-short-configured, NCEM-enabled fill cells
- Stephen Lam ,
- Dennis Ciplickas ,
- Tomasz Brozek ,
- Jeremy Cheng ,
- Simone Comensoli ,
- Indranil De ,
- Kelvin Doong ,
- Hans Eisenmann ,
- Timothy Fiscus ,
- Jonathan Haigh ,
- Christopher Hess ,
- John Kibarian ,
- Sherry Lee ,
- Marci Liao ,
- Sheng-Che Lin ,
- Hideki Matsuhashi ,
- Kimon Michaels ,
- Conor O'Sullivan ,
- Markus Rauscher ,
- Vyacheslav Rovner ,
- Andrzej Strojwas ,
- Marcin Strojwas ,
- Carl Taylor ,
- Rakesh Vallishayee ,
- Larg Weiland ,
- Nobuharu Yokoyama
An IC includes logic cells, selected from a standard cell library, and fill cells, configured for compatibility with the standard logic cells. The fill cells contain structures configured to obtain in-line data via non-contact electrical measurements (NCEM). The IC includes such NCEM-enabled fill cells configured to enable detection and/or measurement of a variety of open-circuit and short-circuit failure modes, including at least one via-open-related failure mode, one TS-short-related failure mode, one metal-short-related failure mode, and one AA-short-related failure mode.