Class / Patent application number | Description | Number of patent applications / Date published |
257332000 | Gate electrode self-aligned with groove | 36 |
20080283910 | INTEGRATED CIRCUIT AND METHOD OF FORMING AN INTEGRATED CIRCUIT - An integrated circuit and method of forming an integrated circuit is disclosed. One embodiment includes a FinFET of a first type having a first gate electrode and a FinFET of a second type having a second gate electrode. The first gate electrode is formed in a gate groove that is defined in a semiconductor substrate and a bottom side of a portion of the second gate electrode is disposed above a main surface of the semiconductor substrate. | 11-20-2008 |
20090050959 | Method and Structure for Shielded Gate Trench FET - A shielded gate field effect transistor includes a trench extending into a semiconductor region. A shield electrode is in a lower portion of the trench, and is insulated from the semiconductor region by a shield dielectric. The shield dielectric comprises first and second dielectric layers, the first dielectric layer extending between the second dielectric layer and the semiconductor region. The second dielectric layer comprises a material which during oxidation process inhibits growth of oxide along surfaces of the semiconductor region covered by the second dielectric layer. An inter-electrode dielectric overlies the shield electrode, and a gate dielectric lines upper trench sidewalls. A gate electrode is in an upper portion of the trench over the inter-electrode dielectric. | 02-26-2009 |
20090200607 | POWER MOSFET - A power MOSFET of the invention includes a cell region in which a plurality of cells constituted of a transistor having a gate electrode formed in a trench is aligned, the plurality of cells being arranged to form a square grid and a gate interconnect lead formed so as to extend out of the cell region, with an end portion overlapping an outermost peripheral gate electrode in the cell region for connection. | 08-13-2009 |
20090218619 | Self-aligned slotted accumulation-mode field effect transistor (AccuFET) structure and method - This invention discloses a semiconductor power device disposed in a semiconductor substrate. The semiconductor power device includes trenched gates each having a stick-up gate segment extended above a top surface of the semiconductor substrate surrounded by sidewall spacers. The semiconductor power device further includes slots opened aligned with the sidewall spacers substantially parallel to the trenched gates. The stick-up gate segment further includes a cap composed of an insulation material surrounded by the sidewall spacers. A layer of barrier metal covers a top surface of the cap and over the sidewall spacers and extends above a top surface of the slots. The slots are filled with a gate material same as the gate segment for functioning as additional gate electrodes for providing a depletion layer extends toward the trenched gates whereby a drift region between the slots and the trenched gate is fully depleted at a gate-to-drain voltage Vgs=0 volt. | 09-03-2009 |
20090283823 | Semiconductor device and method of manufacturing semiconductor device - A semiconductor device includes: a semiconductor layer; a first conductivity type region of a first conductivity type formed in a base layer portion of the semiconductor layer; a body region of a second conductivity type formed in the semiconductor layer to be in contact with the first conductivity type region; a trench formed by digging the semiconductor layer from the surface thereof to pass through the body region so that the deepest portion thereof reaches the first conductivity type region; a gate insulating film formed on the bottom surface and the side surface of the trench; a gate electrode buried in the trench through the gate insulating film; a source region of the first conductivity type formed in a surface layer portion of the semiconductor layer on a side in a direction orthogonal to the gate width with respect to the trench to be in contact with the body region; and a high-concentration region of the second conductivity type, formed in the body region on a position opposed to the trench in the direction orthogonal to the gate width, having a higher second conductivity type impurity concentration than that of the periphery thereof. | 11-19-2009 |
20090302381 | Structure and Method for Forming Power Devices with Carbon-containing Region - A field effect transistor (FET) includes body regions of a first conductivity type over a semiconductor region of a second conductivity type. The body regions form p-n junctions with the semiconductor region. Source regions of the second conductivity type extend over the body regions. The source regions form p-n junctions with the body regions. Gate electrodes extend adjacent to but are insulated from the body regions by a gate dielectric. A carbon-containing region extends in the semiconductor region below the body regions. | 12-10-2009 |
20090309156 | Super Self-Aligned Trench MOSFET Devices, Methods, and Systems - A manufacturing process and design structure for a super self-aligned trench power MOSFET. A plurality of super self-aligned trenches of different depths are formed into the body layer and epitaxial layers, preferably by using a multilayer stack of dielectric material etched to form spacers. Respective trenches contain gate conductors, body-contact conductors, and preferably a third trench containing a recessed field plate. This results in a MOSFET structure having high cell density and low gate charges and gate-drain charges. | 12-17-2009 |
20100006930 | SEMICONDUCTOR DEVICE, MANUFACTURING METHOD THEREOF, AND DATA PROCESSING SYSTEM - A semiconductor device manufacturing method includes steps of: etching a semiconductor substrate | 01-14-2010 |
20100117149 | SEMICONDUCTOR DEVICE HAVING A RECESS CHANNEL TRANSISTOR - The semiconductor device having a recess channel transistor includes a device isolation structure formed in a semiconductor substrate to define an active region having a recess region at a lower part of sidewalls thereof and a recess channel region formed in the semiconductor substrate under the active region. A method for fabricating the semiconductor device includes forming a device isolation structure in a semiconductor substrate to form an active region having a recess region at a lower part of sidewalls thereof, a gate insulating film formed over the semiconductor substrate including the recess channel region, and a gate electrode formed over the gate insulating film to fill up the recess channel region. | 05-13-2010 |
20100163977 | Semiconductor Device and Method for Fabricating the Same - A method for fabricating a semiconductor device includes forming a trench in a substrate, forming a gate electrode buried over the trench to form a buried gate pattern, etching portions of the substrate on both sides of the buried gate pattern to a certain depth, performing an ion implantation process on the substrate to form source/drain junctions, and forming metal patterns over the source/drain junctions. | 07-01-2010 |
20100270613 | Method for manufacturing semiconductor device, and semiconductor device - In a transistor region, a source interconnect layer and a gate electrode are buried in trenches. A source extending region is provided adjacent to the transistor region or in the transistor region, and a source interconnect layer is designed to protrude from the upper end of a trench. This source interconnect layer is connected to a source electrode formed in the transistor region immediately above the trench. A gate extending region is provided outside the source extending region, and the gate electrode and a gate interconnect layer are connected. The gate electrode is formed by performing etchback without forming a resist pattern, after a polysilicon film is formed. Here, the polysilicon film remains like a side-wall on the sidewall of the portion of the source interconnect layer protruding from the upper end of the trench. | 10-28-2010 |
20100320533 | INSULATED GATE TYPE SEMICONDUCTOR DEVICE AND METHOD FOR FABRICATING THE SAME - In an insulated-gate type semiconductor device in which a gate-purpose conductive layer is embedded into a trench which is formed in a semiconductor substrate, and a source-purpose conductive layer is provided on a major surface of the semiconductor substrate, a portion of a gate pillar which is constituted by both the gate-purpose conductive layer and a cap insulating film for capping an upper surface of the gate-purpose conductive layer is projected from the major surface of the semiconductor substrate; a side wall spacer is provided on a side wall of the projected portion of the gate pillar; and the source-purpose conductive layer is connected to a contact region of the major surface of the semiconductor substrate, which is defined by the side wall spacer. | 12-23-2010 |
20100327346 | SEMICONDUCTOR DEVICE AND METHOD FOR FORMING THE SAME - A semiconductor and a method for forming the same are disclosed. The method for forming the semiconductor device includes forming a buried gate on a semiconductor substrate including an active region, forming an insulating layer on the semiconductor substrate, selectively removing the insulating layer from at least an upper part of the active region, forming a bit line on an upper part between the buried gates formed on the active region, and forming a storage electrode contact that is formed at both sides of the bit line and has an extended lower part, so that prevents short circuiting between the storage electrode contact and the bit line, and improves contact resistance by enlarging a contact area between the storage electrode contact and the active region, so that unique characteristics of the semiconductor device are improved. | 12-30-2010 |
20110018058 | High-voltage vertical transistor with edge termination structure - A high-voltage transistor includes a drain, a source, and one or more drift regions extending from the drain toward the source. A field plate member laterally surrounds the drift regions and is insulated from the drift regions by a dielectric layer. It is emphasized that this abstract is provided to comply with the rules requiring an abstract that will allow a searcher or other reader to quickly ascertain the subject matter of the technical disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims. 37 CFR 1.72(b). | 01-27-2011 |
20110068394 | SEMICONDUCTOR DEVICE - A trench gate transistor whose gate changes the depth thereof intermittently in the gate width direction, has a first offset region and a second offset region formed below the source and drain, respectively. The sum of length measurements of the underlying portion of the second offset region measured from the lower corner of the trench in a direction parallel to the substrate and in a direction perpendicular to the substrate is 0.1 μm or greater. | 03-24-2011 |
20110068395 | SUPER-SELF-ALIGNED TRENCH-DMOS STRUCTURE AND METHOD - A semiconductor device includes a P-body layer formed in an N-epitaxial layer; a gate electrode formed in a trench in the P-body and N-epitaxial layer; a top source region formed from the P-body layer next to the gate electrode; a gate insulator disposed along a sidewall of the gate electrode between the gate electrode and the source, between the gate electrode and the P-body and between the gate electrode and the N-epitaxial layer; a cap insulator disposed on top of the gate electrode; and an N+ doped spacer disposed along a sidewall of the source and a sidewall of the gate insulator. The source includes N+ dopants diffused from the spacer. A body contact region containing P-type dopants is formed from the N-epitaxial layer. The contact region touches one or more P-doped regions of the P-body layer and the source. Methods for manufacturing such a device are also disclosed. Embodiments of this invention may also be applied to P-channel devices. | 03-24-2011 |
20110073940 | SEMICONDUCTOR DEVICE WITH ONE-SIDE-CONTACT AND METHOD FOR FABRICATING THE SAME - A method for fabricating a semiconductor device includes forming a first conductive layer doped with an impurity for forming a cell junction over a semiconductor substrate, forming a second conductive layer over the first conductive layer, forming a plurality of active regions by etching the second conductive layer and the first conductive layer, the plurality of the active regions being separated from one another by trenches, forming a side contact connected to a sidewall of the first conductive layer, and forming a plurality of metal bit lines each connected to the side contact and filling a portion of each trench. | 03-31-2011 |
20110127604 | SEMICONDUCTOR DEVICE - A semiconductor device having a field plate structure shows a high electric field relaxation effect. The semiconductor device comprises a nitride semiconductor layer formed on a substrate, a source electrode formed so as to electrically contact the nitride semiconductor layer, a drain electrode formed so as to electrically contact the nitride semiconductor layer, a gate electrode formed between the source electrode and the drain electrode on the nitride semiconductor layer, a cap layer formed between the gate electrode and the drain electrode on the surface of the nitride semiconductor layer, a passivation layer covering the cap layer and a field plate formed as part of the gate electrode on the layer formed by the cap layer and the passivation layer, the cap layer being made of a composition containing part of the composition of the material of the nitride semiconductor layer and having a thickness of 2 to 50 nm, the end of the cap layer at the side of the gate electrode being provided with a taper angle of not greater than 60° to form a slope. | 06-02-2011 |
20110169076 | POWER MOSFET AND METHOD OF FORMING THE SAME - A power MOSFET is described. A trench is in a body layer and an epitaxial layer. An isolation structure is on the substrate at one side of the trench. An oxide layer is on the surface of the trench. A first conductive layer fills the trench and extends to the isolation structure. A dielectric layer is on the first conductive layer and isolation structure and has an opening exposing the first conductive layer. At least one source region is in the body layer at the other side of the trench. A second conductive layer is on the dielectric layer and electrically connected to the source region while electrically isolated from the first conductive layer by the dielectric layer. A third conductive layer is on the dielectric layer and electrically connected to the first conductive layer through the opening of the dielectric layer. The second and third conductive layers are separated. | 07-14-2011 |
20110233665 | SEMICONDUCTOR DEVICE AND METHOD OF MANUFACTURING THE SAME - A gate trench | 09-29-2011 |
20110260243 | POWER SEMICONDUCTOR DEVICE - According to one embodiment, a power semiconductor device includes a first semiconductor layer of a first conductivity type, a second semiconductor layer of the first conductivity type and a third semiconductor layer of a second conductivity type, a fourth semiconductor layer, a fifth semiconductor layer, a first and second main electrode, a first and second insulating film and a control electrode. The second and third layers are provided periodically on the first layer. The fourth layer is provided on the third layer. The fifth layer is selectively provided on the fourth layer. The first film is provided on sidewalls of a trench that reaches from a surface of the fifth layer to the second layer. The second film is provided closer to a bottom side of the trench than the first film and has a higher permittivity than the first film. The control electrode is embedded in the trench. | 10-27-2011 |
20110316076 | Power MOSFET Device with Self-Aligned Integrated Schottky and its Manufacturing Method - A power MOSFET device and manufacturing method thereof, includes the steps of selectively depositing a first conductive material in the middle region at the bottom of a contact trench and contacting with light-doped N-type epitaxial layer to form a Schottky junction and depositing a second conductive material at the side wall and bottom corner of the contact trench and contacting with P-type heavy-doped body region to form an ohmic junction. The first and second conductive materials can respectively optimize the performance of the ohmic contact and the Schottky contact without compromise. Meanwhile, the corner of the contact trench is surrounded by P-type heavy-doped region thereby effectively reducing the leakage currents accumulated at the corner of the contact trench. | 12-29-2011 |
20120068262 | Integrated MOSFET Device and Method with Reduced Kelvin Contact Impedance and Breakdown Voltage - A MOSFET device and fabrication method are disclosed. The MOSFET has a drain in chip plane with an epitaxial layer overlay atop. The MOSFET further comprises: a Kelvin-contact body and an embedded Kelvin-contact source; a trench gate extending into the epitaxial layer; a lower contact trench extending through the Kelvin-contact source and at least part of the Kelvin-contact body defining respectively a vertical source-contact surface and a vertical body-contact surface; a patterned dielectric layer atop the Kelvin-contact source and the trench gate; a patterned top metal layer. As a result: a planar ledge is formed atop the Kelvin-contact source; the MOSFET device exhibits a lowered body Kelvin contact impedance and, owing to the presence of the planar ledge, a source Kelvin contact impedance that is lower than an otherwise MOSFET device without the planar ledge; and an integral parallel Schottky diode is also formed. | 03-22-2012 |
20120074490 | SEMICONDUCTOR DEVICE AND METHOD OF MANUFACTURING THE SEMICONDUCTOR DEVICE - To realize forming a trench MOSFET in which a depth of a P-body is changed on the same surface as a CMOS by employing steps with good controllability and without greatly increasing the number of manufacturing steps, provided is a trench MOSFET including an extended body region ( | 03-29-2012 |
20120119291 | Power device with self-aligned source regions - A field effect transistor (FET) includes a plurality of trenches extending into a silicon layer, each trench having upper sidewalls that fan out. Contact openings extend into the silicon layer between adjacent trenches such that each trench and an adjacent contact opening form a common upper sidewall portion. Body regions extend between adjacent trenches. Source regions that are self-aligned to corresponding trenches extend in the body regions adjacent opposing sidewalls of each trench, and have a conductivity type opposite that of the body regions. | 05-17-2012 |
20120175699 | TRENCH MOSFET WITH SUPER PINCH-OFF REGIONS AND SELF-ALIGNED TRENCHED CONTACT - A power semiconductor device having a self-aligned structure and super pinch-off regions is disclosed. The on-resistance is reduced by forming a short channel without having punch-through issue. The on-resistance is further reduced by forming an on-resistance reduction implanted drift region between adjacent shield electrodes, having doping concentration heavier than epitaxial layer without degrading breakdown voltage with a thick oxide on bottom and sidewalls of the shield electrode. Furthermore, the present invention enhance the switching speed comparing to the prior art. | 07-12-2012 |
20120211829 | FIELD-EFFECT TRANSISTOR AND METHOD OF CREATING SAME - A field-effect transistor has a gate, a source, and a drain. The gate has a via extending through a semiconductor chip substrate from one surface to an opposite surface of the semiconductor chip substrate. The source has a first toroid of ion dopants implanted in the semiconductor chip substrate surrounding one end of the via on the one surface of the semiconductor chip substrate. The drain has a second toroid of ion dopants implanted in the semiconductor chip substrate surrounding an opposite end of the via on the opposite surface of the semiconductor chip substrate. | 08-23-2012 |
20130105891 | POWER TRANSISTOR DEVICE AND MANUFACTURING METHOD THEREOF | 05-02-2013 |
20130119464 | SEMICONDUCTOR DEVICE WITH ONE-SIDE-CONTACT AND METHOD FOR FABRICATING THE SAME - A method for fabricating a semiconductor device includes forming a first conductive layer doped with an impurity for forming a cell junction over a semiconductor substrate, forming a second layer over the first conductive layer, forming a plurality of active regions by etching the second layer and the first conductive layer, the plurality of the active regions being separated from one another by trenches, forming a side contact connected to a sidewall of the first conductive layer, and forming a plurality of metal bit lines each connected to the side contact and filling a portion of each trench. | 05-16-2013 |
20130181284 | Method for Forming Self-Aligned Trench Contacts of Semiconductor Components and A Semiconductor Component - A method for producing a semiconductor component is described. The method includes providing a semiconductor body having a first surface and being comprised of a first semiconductor material extending to the first surface. At least one trench extends from the first surface into the semiconductor body and includes a gate electrode insulated from the semiconductor body and arranged below the first surface. The method further includes: forming a second insulation layer on the first surface with a recess that overlaps in projection onto the first surface with the conductive region; forming a mask region in the recess; etching the second insulation layer selectively to the mask region and the semiconductor body to expose the semiconductor body at the first surface; depositing a third insulation layer on the first surface; and etching the third insulation layer so that a semiconductor mesa of the semiconductor body arranged next to the a least one trench is exposed at the first surface. | 07-18-2013 |
20130292760 | POWER TRANSISTOR DEVICE - The present invention provides a power transistor device including a substrate, an epitaxial layer, a dopant source layer, a doped drain region, a first insulating layer, a gate structure, a second insulating layer, a doped source region, and a metal layer. The substrate, the doped drain region, and the doped source region have a first conductive type, while the epitaxial layer has a second conductive type. The epitaxial layer is formed on the substrate and has at least one through hole through the epitaxial layer. The first insulating layer, the gate structure, and the second insulating layer are formed sequentially on the substrate in the through hole. The doped drain region and doped source region are formed in the epitaxial layer at one side of the through hole. The metal layer is formed on the epitaxial layer and extends into the through hole to contact the doped source region. | 11-07-2013 |
20130307067 | Slit Recess Channel Gate - A slit recess channel gate is provided. The slit recess channel gate includes a substrate, a gate dielectric layer, a first conductive layer and a second conductive layer. The substrate has a first trench. The gate dielectric layer is disposed on a surface of the first trench and the first conductive layer is embedded in the first trench. The second conductive layer is disposed on the first conductive layer and aligned with the first conductive layer above the main surface, wherein a bottom surface area of the second conductive layer is substantially smaller than a top surface area of the second conductive layer. | 11-21-2013 |
20140191314 | SEMICONDUCTOR DEVICE AND FABRICATION METHOD - Semiconductor devices and fabrication methods are provided. A fin can be formed on a semiconductor substrate, a gate can be formed across the fin, and sidewall spacers can be formed across the fin on both sides of the gate. A dummy contact can be formed across the fin and on each of the both sides of the sidewall spacers. After forming an interlayer dielectric layer on the semiconductor substrate, the dummy contact can be removed to form a contact trench. The dummy contact is made of a material having an etch selectivity sufficiently higher than the fin such that the removing of the dummy contact generates substantially no damage to the fin. A conductive material can be filled in the contact trench to form a trench metal contact. | 07-10-2014 |
20140374822 | SEMICONDUCTOR DEVICE AND METHOD FOR MANUFACTURING THE SAME - A semiconductor device and a method for manufacturing the same are disclosed, which include a gate electrode material in a recess or a buried gate cell structure, a polysilicon material doped with impurities over a sidewall of a recess located over the gate electrode material, and a junction formed by an annealing or a rapid thermal annealing (RTA) process, thereby establishing a degree overlap between a gate electrode material of a buried gate and a junction. | 12-25-2014 |
20150076593 | POWER DEVICES, STRUCTURES, COMPONENTS, AND METHODS USING LATERAL DRIFT, FIXED NET CHARGE, AND SHIELD - Lateral power devices where immobile electrostatic charge is emplaced in dielectric material adjoining the drift region. A shield gate is interposed between the gate electrode and the drain, to reduce the Miller charge. In some embodiments the gate electrode is a trench gate, and in such cases the shield electrode too is preferably vertically extended. | 03-19-2015 |
20160172484 | Vertical FET Having Reduced On-Resistance | 06-16-2016 |