TL;DR: In this article, a method of manufacturing a semiconductor device includes forming a channel region in a workpiece, and forming a source or drain region proximate the channel region, which includes a contact resistance-lowering material layer comprising SiP, SiAs, or a silicide.
Abstract: Semiconductor devices and methods of manufacture thereof are disclosed. In one embodiment, a method of manufacturing a semiconductor device includes forming a channel region in a workpiece, and forming a source or drain region proximate the channel region. The source or drain region includes a contact resistance-lowering material layer comprising SiP, SiAs, or a silicide. The source or drain region also includes a channel-stressing material layer comprising SiCP or SiCAs.
TL;DR: In this article, a method for generating a layout for a device having FinFETs from a first layout of the device having planar transistors is presented, where the planar layout is analyzed and corresponding Fin-FET structures are generated in a matching fashion.
Abstract: A method for generating a layout for a device having FinFETs from a first layout for a device having planar transistors is disclosed. The planar layout is analyzed and corresponding FinFET structures are generated in a matching fashion. The resulting FinFET structures are then optimized. Dummy patterns and a new metal layer may be generated before the FinFET layout is verified and outputted.
TL;DR: In this paper, the authors describe a contact structure for a semiconductor device consisting of a substrate comprising a major surface and a cavity below the major surface, wherein a strained material in the cavity is different from a lattice constant of the substrate.
Abstract: The disclosure relates to a semiconductor device. An exemplary structure for a contact structure for a semiconductor device comprises a substrate comprising a major surface and a cavity below the major surface; a strained material in the cavity, wherein a lattice constant of the strained material is different from a lattice constant of the substrate; a Ge-containing dielectric layer over the strained material; and a metal layer over the Ge-containing dielectric layer.
TL;DR: In this article, a method for patterning a plurality of features in a non-rectangular pattern, such as on an integrated circuit device, is presented, where a first layer is formed above the surface and above the plurality of elongated features, and patterned with an end cutting mask.
Abstract: A method for patterning a plurality of features in a non-rectangular pattern, such as on an integrated circuit device, includes providing a substrate including a surface with a plurality of elongated protrusions, the elongated protrusions extending in a first direction. A first layer is formed above the surface and above the plurality of elongated protrusions, and patterned with an end cutting mask. The end cutting mask includes two nearly-adjacent patterns with a sub-resolution feature positioned and configured such that when the resulting pattern on the first layer includes the two nearly adjacent patterns and a connection there between. The method further includes cutting ends of the elongated protrusions using the pattern on the first layer.
TL;DR: In this paper, a package includes a chip that has a metal-insulator-metal (MIM) capacitor formed in a first polymer layer and a metallic pillar formed on the MIM capacitor.
Abstract: A package includes a chip that has a metal-insulator-metal (MIM) capacitor formed in a first polymer layer and a metallic pillar formed on the MIM capacitor. A molding compound surrounds the chip, a second polymer layer is formed on the chip and the molding compound, a third polymer layer is formed on the second polymer layer, an interconnect structure is formed between the second polymer layer and the third polymer layer and electrically coupled to the metallic pillar and the MIM capacitor, and a bump is formed over and electrically coupled to the interconnect structure.
TL;DR: In this paper, a dielectric layer is formed over a portion of an SRAM cell and a contact plug is formed in the contact opening, where a first mask layer and a second mask layer are formed over the dielectrics layer and patterned.
Abstract: A method includes forming a dielectric layer over a portion of an SRAM cell. The SRAM cell includes a first pull-up transistor and a second pull-up transistor, a first pull-down transistor and a second pull-down transistor forming cross-latched inverters with the first pull-up transistor and the second pull-up transistor, and a first pass-gate transistor and a second pass-gate transistor connected to drains of the first pull-up transistor and the first pull-down transistor and drains of the second pull-up transistor and the second pull-down transistor, respectively. A first mask layer is formed over the dielectric layer and patterned. A second mask layer is formed over the dielectric layer and patterned. The dielectric layer is etched using the first mask layer and the second mask layer in combination as an etching mask, wherein a contact opening is formed in the dielectric layer. A contact plug is formed in the contact opening.
TL;DR: In this paper, the authors present an embodiment of a semiconductor structure that includes a first region and a second region; a shallow trench isolation (STI) feature formed in the semiconductor substrate; and a plurality of conductive features disposed on the fin active regions.
Abstract: The present disclosure provides one embodiment of a semiconductor structure that includes a semiconductor substrate having a first region and a second region; a shallow trench isolation (STI) feature formed in the semiconductor substrate. The STI feature includes a first portion disposed in the first region and having a first thickness T 1 and a second portion disposed in the second region and having a second thickness T 2 greater than the first depth, the first portion of the STI feature being recessed from the second portion of the STI feature. The semiconductor structure also includes a plurality of fin active regions on the semiconductor substrate; and a plurality of conductive features disposed on the fin active regions and the STI feature, wherein one of the conductive features covers the first portion of the STI feature in the first region.
TL;DR: In this paper, a method for forming semiconductor contacts comprises forming a germanium fin structure over a silicon substrate, depositing a doped amorphous silicon layer over the first drain/source region and the second drain and source region at a first temperature, wherein the first temperature is lower than a melting point of the fin structure, and performing a solid phase epitaxial regrowth process on the doped silicon layer at a second temperature.
Abstract: A method for forming semiconductor contacts comprises forming a germanium fin structure over a silicon substrate, depositing a doped amorphous silicon layer over the first drain/source region and the second drain/source region at a first temperature, wherein the first temperature is lower than a melting point of the germanium fin structure and performing a solid phase epitaxial regrowth process on the amorphous silicon layer at a second temperature, wherein the second temperature is lower than the melting point of the germanium fin structure.
TL;DR: In this article, a post passivation interconnect (PPI) line is formed on the molding material connected to a first contact pad of the first chip by a first connection, and connected to the second contact pad by a second connection, wherein the first connection and the second connection may be a Cu ball, a Cu via, or other kinds of connections.
Abstract: Methods and apparatus are disclosed to form a WLP device that comprises a first chip made of a first technology, and a second chip made of a second technology different from the first technology packaged together by a molding material encapsulating the first chip and the second chip. A post passivation interconnect (PPI) line may be formed on the molding material connected to a first contact pad of the first chip by a first connection, and connected to a second contact pad of the second chip by a second connection, wherein the first connection and the second connection may be a Cu ball, a Cu via, a Cu stud, or other kinds of connections.
TL;DR: In this article, a fin structure over a substrate and a method of forming the fin structure are disclosed. The fin structure includes a mesa, a channel, and a convex-shaped feature disposed between the channel and the mesa.
Abstract: A fin structure disposed over a substrate and a method of forming a fin structure are disclosed. The fin structure includes a mesa, a channel disposed over the mesa, and a convex-shaped feature disposed between the channel and the mesa. The mesa has a first semiconductor material, and the channel has a second semiconductor material different from the first semiconductor material. The convex-shaped feature is stepped-shaped, stair-shaped, or ladder-shaped. The convex-shaped feature includes a first isolation feature disposed between the channel and the mesa, and a second isolation feature disposed between the channel and the first isolation feature. The first isolation feature is U-shaped, and the second isolation feature is rectangular-shaped. A portion of the second isolation feature is surrounded by the channel and another portion of the second isolation feature is surrounded by the first isolation feature.
TL;DR: In this article, a molding compound is used to attach the semiconductor die to the interposer frame and forming a redistribution layer on one or both sides of the die, which enables fan-out connections and formation of external connection structures.
Abstract: The mechanisms of using an interposer frame to package a semiconductor die enables fan-out structures and reduces form factor for the packaged semiconductor die. The mechanisms involve using a molding compound to attach the semiconductor die to the interposer frame and forming a redistribution layer on one or both sides of the semiconductor die. The redistribution layer(s) in the package enables fan-out connections and formation of external connection structures. Conductive columns in the interposer frame assist in thermal management.
TL;DR: In this paper, a substrate, a high energy bandgap material, and a high carrier mobility material are combined to form a fin, where the carrier mobility is over the first surface of the substrate and is disposed between the first and second isolation regions.
Abstract: An embodiment is a structure comprising a substrate, a high energy bandgap material, and a high carrier mobility material. The substrate comprises a first isolation region and a second isolation region. Each of first and second isolation regions extends below a first surface of the substrate between the first and second isolation regions. The high energy bandgap material is over the first surface of the substrate and is disposed between the first and second isolation regions. The high carrier mobility material is over the high energy bandgap material. The high carrier mobility material extends higher than respective top surfaces of the first and second isolation regions to form a fin.
TL;DR: In this paper, the authors describe a planarization stop layer to determine an end-point of the removal of excess molding compound prior to formation of redistribution lines (RDLs).
Abstract: The embodiments of mechanisms of wafer-level packaging (WLP) described above utilize a planarization stop layer to determine an end-point of the removal of excess molding compound prior to formation of redistribution lines (RDLs). Such mechanisms of WLP are used to implement fan-out and multi-chip packaging. The mechanisms are also usable to manufacture a package including chips (or dies) with different types of external connections. For example, a die with pre-formed bumps can be packaged with a die without pre-formed bumps.
TL;DR: In this paper, a passive device consisting of a substrate, a metal pad over the substrate, and a passivation layer having a portion over the metal pad is presented, where an Under-Bump Metallurgy (UBM) is disposed over and electrically coupled to the PPI line.
Abstract: A device includes a substrate, a metal pad over the substrate, and a passivation layer having a portion over the metal pad. A Post-Passivation Interconnect (PPI) line is disposed over the passivation layer and electrically coupled to the metal pad. An Under-Bump Metallurgy (UBM) is disposed over and electrically coupled to the PPI line. A passive device includes a portion at a same level as the UBM. The portion of the passive device is formed of a same material as the UBM.
TL;DR: In this paper, a system and method for stacking semiconductor devices in three dimensions is presented, in which two or more semiconductor dies are attached to a carrier and encapsulated.
Abstract: A system and method for stacking semiconductor devices in three dimensions is provided. In an embodiment two or more semiconductor dies are attached to a carrier and encapsulated. Connections of the two or more semiconductor dies are exposed, and the two or more semiconductor dies may be thinned to form connections on an opposite side. Additional semiconductor dies may then be placed in either an offset or overhanging position.
TL;DR: In this article, an embodiment is defined as a device comprising a substrate, a metal pad over the substrate, and a passivation layer comprising a portion over the metal pad, where the first portion of the passive device is formed of a same material as the metal pillar.
Abstract: An embodiment is a device comprising a substrate, a metal pad over the substrate, and a passivation layer comprising a portion over the metal pad. The device further comprises a metal pillar over and electrically coupled to the metal pad, and a passive device comprising a first portion at a same level as the metal pillar, wherein the first portion of the passive device is formed of a same material as the metal pillar.
TL;DR: In this article, an exemplary structure for a field effect transistor (FET) comprises a silicon substrate comprising a first surface, a channel portion over the first surface and two source/drain regions surrounding the channel portion.
Abstract: An exemplary structure for a field effect transistor (FET) comprises a silicon substrate comprising a first surface; a channel portion over the first surface, wherein the channel portion has a second surface at a first height above the first surface, and a length parallel to first surface; and two source/drain (S/D) regions on the first surface and surrounding the channel portion along the length of the channel portion, wherein the two S/D regions comprise SiGe, Ge, Si, SiC, GeSn, SiGeSn, SiSn, or III-V material.
TL;DR: In this article, a magnetic element is disclosed that has a composite free layer with a FM1/moment diluting/FM2 configuration wherein FM1 and FM2 are magnetic layers made of one or more of Co, Fe, Ni, and B and the moment diluting layer is used to reduce the perpendicular demagnetizing field.
Abstract: A magnetic element is disclosed that has a composite free layer with a FM1/moment diluting/FM2 configuration wherein FM1 and FM2 are magnetic layers made of one or more of Co, Fe, Ni, and B and the moment diluting layer is used to reduce the perpendicular demagnetizing field. As a result, lower resistance x area product and higher thermal stability are realized when perpendicular surface anisotropy dominates shape anisotropy to give a magnetization perpendicular to the planes of the FM1, FM2 layers. The moment diluting layer may be a non-magnetic metal like Ta or a CoFe alloy with a doped non-magnetic metal. A perpendicular Hk enhancing layer interfaces with the FM2 layer and may be an oxide to increase the perpendicular anisotropy field in the FM2 layer. The magnetic element may be part of a spintronic device or serve as a propagation medium in a domain wall motion device.
TL;DR: In this article, a metal-oxide-semiconductor (MOS) transistor with a gate contact plug and a source/drain contact plug is shown to be substantially level with an interface between the gate contact and the gate electrode.
Abstract: A device includes a semiconductor substrate and a Metal-Oxide-Semiconductor (MOS) transistor. The MOS transistor includes a gate electrode over the semiconductor substrate, and a source/drain region on a side of the gate electrode. A source/drain contact plug includes a lower portion and an upper portion over the lower portion, wherein the source/drain contact plug is disposed over and electrically connected to the source/drain region. A gate contact plug is disposed over and electrically connected to the gate electrode, wherein a top surface of the gate contact plug is level with a top surface of the top portion of the source/drain contact plug. A Through-Substrate Via (TSV) extends into the semiconductor substrate. A top surface of the TSV is substantially level with an interface between the gate contact plug and the gate electrode.
TL;DR: In this article, a structure for an integrated circuit with reduced contact resistance is described, which consists of a substrate, a cap layer, a dielectric layer, and a trench embedded in the capping layer.
Abstract: A structure for an integrated circuit with reduced contact resistance is disclosed. The structure includes a substrate, a cap layer deposited on the substrate, a dielectric layer deposited on the cap layer, and a trench embedded in the dielectric layer. The trench includes an atomic layer deposition (ALD) TaN or a chemical vapor deposition (CVD) TaN deposited on a side wall of the trench, a physical vapor deposition (PVD) Ta or a combination of the PVD Ta and a PVD TaN deposited on the ALD TaN or CVD TaN, and a Cu deposited on the PVD Ta or the combination of the PVD Ta and the PVD TaN deposited on the ALD TaN or the CVD TaN. The structure further includes a via integrated into the trench at bottom of the filled trench.
TL;DR: In this paper, a synthetic antiferromagnetic (SAF) structure for a spintronic device is disclosed and has an AP2/antiferromagnagnetic coupling/CoFeB configuration.
Abstract: A synthetic antiferromagnetic (SAF) structure for a spintronic device is disclosed and has an AP2/antiferromagnetic (AF) coupling/CoFeB configuration. The SAF structure is thinned to reduce the fringing (Ho) field while maintaining high coercivity. The AP2 reference layer has intrinsic perpendicular magnetic anisotropy (PMA) and induces PMA in a thin CoFeB layer through AF coupling. In one embodiment, AF coupling is improved by inserting a Co dusting layer on top and bottom surfaces of a Ru AF coupling layer. When AP2 is (Co/Ni) 4 , and CoFeB thickness is 7.5 Angstroms, Ho is reduced to 125 Oe, Hc is 1000 Oe, and a balanced saturation magnetization-thickness product (Mst)=0.99 is achieved. The SAF structure may also be represented as FL2/AF coupling/CoFeB where FL2 is a ferromagnetic layer with intrinsic PMA.
TL;DR: In this article, the authors present a method for forming a FinFET device, the method comprising forming a semiconductor strip over the semiconductor substrate, where the semiconductors are disposed in a dielectric layer, forming a gate over the strip and the dielectrics layer, and forming a first recess and a second recess, wherein the first recess is on an opposite side of the gate from the second recess.
Abstract: Embodiments of the present disclosure are a FinFET device, and methods of forming a FinFET device. An embodiment is a method for forming a FinFET device, the method comprising forming a semiconductor strip over a semiconductor substrate, wherein the semiconductor strip is disposed in a dielectric layer, forming a gate over the semiconductor strip and the dielectric layer, and forming a first recess and a second recess in the semiconductor strip, wherein the first recess is on an opposite side of the gate from the second recess. The method further comprises forming a source region in the first recess and a drain region in the second recess, and recessing the dielectric layer, wherein a first portion of the semiconductor strip extends above a top surface of the dielectric layer forming a semiconductor fin.
TL;DR: In this article, the integrated fan-out wafer-level packaging (InFO-WLP) technology with state-of-the-art inductors (quality factor of 42 and self-resonance frequency of 16 GHz) was demonstrated for heterogeneous integration of digital and radio frequency (RF) systems.
Abstract: Integrated fan-out wafer-level packaging (InFO-WLP) technology with state-of-the-art inductors (quality factor of 42 and self-resonance frequency of 16 GHz) has been demonstrated for heterogeneous integration of digital and radio frequency (RF) systems. InFO-WLP promises superior form factor, pin count, and thermal performance to existing flip-chip ball grid array (FC-BGA) packages. In addition, InFO-WLP's high Q inductors can enhance electrical performance and lower power consumption in RF circuit applications.
TL;DR: In this paper, a treatment is performed on a surface of a first semiconductor region, wherein the treatment was performed using process gases including an oxygen-containing gas and an etching gas for etching the semiconductor material.
Abstract: A treatment is performed on a surface of a first semiconductor region, wherein the treatment is performed using process gases including an oxygen-containing gas and an etching gas for etching the semiconductor material. An epitaxy is performed to grow a second semiconductor region on the surface of the first semiconductor region.
TL;DR: In this article, an N-work function metal for a gate stack of a field effect transistor (FinFET) and method of forming the same are provided, where the gate stack includes an N work function metal layer comprising an oxidation layer on opposing sides of a tantalum aluminide carbide (TaAlC) layer.
Abstract: An N work function metal for a gate stack of a field effect transistor (FinFET) and method of forming the same are provided. An embodiment FinFET includes a fin supported by a semiconductor substrate, the fin extending between a source and a drain and having a channel region, and a gate stack formed over the channel region of the fin, the gate stack including an N work function metal layer comprising an oxidation layer on opposing sides of a tantalum aluminide carbide (TaAlC) layer.
TL;DR: In this paper, a bias-adjusted layout design of a conductive feature is generated according to a first layout bias rule and a second bias bias rule based on a second set of predetermined criteria.
Abstract: A method of generating a bias-adjusted layout design of a conductive feature includes receiving a layout design of the conductive feature. If a geometry configuration of the layout design is within a first set of predetermined criteria, the bias-adjusted layout design of the conductive feature is generated according to a first layout bias rule. If the geometry configuration of the layout design is within a second set of predetermined criteria, the bias-adjusted layout design of the conductive feature is generated according to a second layout bias rule.
TL;DR: In this article, a III-V compound semiconductor region is epitaxially growing in a trench followed by capping and annealing the region, which limits the escape of atoms from the region and enables the reduction or elimination of stacking faults.
Abstract: Stacking faults are reduced or eliminated by epitaxially growing a III-V compound semiconductor region in a trench followed by capping and annealing the region. The capping layer limits the escape of atoms from the region and enables the reduction or elimination of stacking faults along with the annealing.
TL;DR: In this paper, a reflective mask is described, which includes a low thermal expansion material (LTEM) substrate, a conductive layer, a stack of reflective multilayers (ML) deposited on a second surface of the LTEM substrate and a capping layer.
Abstract: A reflective mask is described. The mask includes a low thermal expansion material (LTEM) substrate, a conductive layer deposited on a first surface of the LTEM substrate, a stack of reflective multilayers (ML) deposited on a second surface of the LTEM substrate, a capping layer deposited on the stack of reflective ML, a first absorption layer deposited on the first capping layer, a main pattern, and a border ditch. The border ditch reaches to the capping layer, a second absorption layer deposited inside the border ditch, and where the second absorption layer contacts the capping layer. In some instances, the border ditch crosses the capping layer and partially enters the reflective multilayer.
TL;DR: In this article, a plurality of dies is bonded onto a front surface of the interposer wafer and a grinding is performed on a backside of the substrate to expose the plurality of TSVs.
Abstract: A method includes providing an interposer wafer including a substrate, and a plurality of through-substrate vias (TSVs) extending from a front surface of the substrate into the substrate. A plurality of dies is bonded onto a front surface of the interposer wafer. After the step of bonding the plurality of dies, a grinding is performed on a backside of the substrate to expose the plurality of TSVs. A plurality of metal bumps is formed on a backside of the interposer wafer and electrically coupled to the plurality of TSVs.
TL;DR: In this paper, a new high density Contact RRAM (CRRAM) cell realized in pure high-k metal gate 28nm CMOS logic process with a very small 35nm×35nm resistive contact hole has been fabricated without extra masking or process step.
Abstract: A new high density Contact RRAM (CRRAM) cell realized in pure high-k metal gate 28nm CMOS logic process with a very small 35nm×35nm resistive contact hole has been fabricated without extra masking or process step. This study reports the first time of a manufacturable tiny resistive node of RRAM cell on a 28nm CMOS logic platform and fully compatible with high-k metal gate processes. The 28nm Contact RRAM cell exhibits a stable operation window with a very small cell size of 0.03μm2. Due to the scale down and uniform manufacturing process, the cell reliably operates in a low set voltage of 3V and an acceptable reset current of 60μA/cell with short set and reset time of 500ns and 100us. Excellent endurance of more than 1M cycles and stable data retention at high temperature further support the 28nm Contact RRAM will be a promising SOC memory in the future.