Patent classifications
H10D30/69
Embedded HKMG non-volatile memory
The present disclosure relates to an integrated circuit (IC) that includes a high-k metal gate (HKMG) non-volatile memory (NVM) device and that provides small scale and high performance, and a method of formation. In some embodiments, the integrated circuit includes a memory region having a select transistor and a control transistor laterally spaced apart over a substrate. A select gate electrode and a control gate electrode are disposed over a high-k gate dielectric layer and a memory gate oxide. A logic region is disposed adjacent to the memory region and has a logic device including a metal gate electrode disposed over the high-k gate dielectric layer and a logic gate oxide. The select gate electrode and the control gate electrode can be polysilicon electrodes.
Read performance of a non-volatile memory device, in particular a non-volatile memory device with buried selection transistor
The non-volatile memory device comprises memory cells each comprising a selectable state transistor having a floating gate and a control gate. The state transistor is of the depletion-mode type and is advantageously configured so as to have a threshold voltage that is preferably negative when the memory cell is in a virgin state. When the memory cell is read, a read voltage of zero may then be applied to the control gate and also to the control gates of the state transistors of all the memory cells of the memory device.
Deposited material and method of formation
A system and method for manufacturing a semiconductor device is provided. An embodiment comprises forming a deposited layer using an atomic layer deposition (ALD) process. The ALD process may utilize a first precursor for a first time period, a first purge for a second time period longer than the first time period, a second precursor for a third time period longer than the first time period, and a second purge for a fourth time period longer than the third time period.
Semiconductor device including compound and nitride members
A semiconductor device includes first to third electrodes, a semiconductor member, first and second insulating members, a compound member, and a nitride member. The third electrode is between the first and second electrodes. The semiconductor member includes first and second semiconductor regions. The first semiconductor region includes first to fifth partial regions. The second semiconductor region includes first and second semiconductor portions. The first insulating member includes first and second insulating portions. The first semiconductor portion is between the fourth partial region and the first insulating portion. The second semiconductor portion is between the fifth partial region and the second insulating portion. The compound member includes first to third compound portions. The nitride member includes first to third nitride portions. The second insulating member includes first and second insulating regions. The first and second insulating regions are between the nitride regions and the third electrode.
Structures of gate contact formation for vertical transistors
Structures and methods that facilitate the formation of gate contacts for vertical transistors constructed with semiconductor pillars and spacer-like gates are disclosed. In a first embodiment, a gate contact rests on an extended gate region, a piece of a gate film, patterned at a side of a vertical transistor at the bottom of the gate. In a second embodiment, an extended gate region is patterned on top of one or more vertical transistors, resulting in a modified transistor structure. In a third embodiment, a gate contact rests on a top surface of a gate merged between two closely spaced vertical transistors. Optional methods and the resultant intermediate structures are included in the first two embodiments in order to overcome the related topography and ease the photolithography. The third embodiment includes alternatives for isolating the gate contact from the semiconductor pillars or for isolating the affected semiconductor pillars from the substrate.
Structure and method for providing line end extensions for fin-type active regions
A semiconductor structure includes an isolation feature formed in the semiconductor substrate and a first fin-type active region. The first fin-type active region extends in a first direction. A dummy gate stack is disposed on an end region of the first fin-type active region. The dummy, gate stack may overlie an isolation structure. In an embodiment, any recess such as formed for a source/drain region in the first fin-type active region will be displaced from the isolation region by the distance the dummy gate stack overlaps the first fin-type active region.
Device architectures with tensile and compressive strained substrates
A semiconductor structure, including: a base substrate; an insulating layer on the base substrate, the insulating layer having a thickness between about 5 nm and about 100 nm; and an active layer comprising at least two pluralities of different volumes of semiconductor material comprising silicon, germanium, and/or silicon germanium, the active layer disposed over the insulating layer, the at least two pluralities of different volumes of semiconductor material comprising: a first plurality of volumes of semiconductor material having a tensile strain of at least about 0.6%; and a second plurality of volumes of semiconductor material having a compressive strain of at least about 0.6%. Also described is a method of preparing a semiconductor structure and a segmented strained silicon-on-insulator device.
3D semiconductor device and structure with logic and memory
A 3D semiconductor device including: a first level including a single crystal layer and a memory control circuit including first transistors and at least one cache memory unit; a first metal layer overlaying the single crystal layer; a second metal layer overlaying the first metal layer; a third metal layer overlaying the second metal layer; second transistors disposed atop the third metal layer with at least one including a metal gate; third transistors disposed atop the second transistors; a fourth metal layer atop the third transistors; a memory array including word-lines and at least four memory mini arrays, each including at least four rows by four columns of memory cells, each of the memory cells includes at least one of the second transistors or at least one of the third transistors; a connection path from the fourth metal to the third metal including a via disposed through the memory array.
Three-dimensional semiconductor device and method of fabricating the same
Provided is a three-dimensional semiconductor device and its fabrication method. The semiconductor device includes a first active region on a substrate and including a plurality of lower channel patterns and a plurality of lower source/drain patterns that are alternately arranged along a first direction, a second active region on the first active region and including a plurality of upper channel patterns and a plurality of upper source/drain patterns that are alternately arranged along the first direction, a first gate electrode on a first lower channel pattern of the lower channel patterns and on a first upper channel pattern of the upper channel patterns, and a second gate electrode on a second lower channel pattern of the lower channel patterns and on a second upper channel pattern of the upper channel patterns. The second gate electrode may include lower and upper gate electrodes with an isolation pattern interposed therebetween.
Devices including heterogeneous channels, and related memory devices, electronic systems, and methods
A transistor comprises a first conductive contact, a heterogeneous channel comprising at least one oxide semiconductor material over the first conductive contact, a second conductive contact over the heterogeneous channel, and a gate electrode laterally neighboring the heterogeneous channel. A device, a method of forming a device, a memory device, and an electronic system are also described.