Patents by Inventor Marko Radosavljevic

Marko Radosavljevic has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20230420574
    Abstract: Techniques are provided herein to form semiconductor devices on a substrate with an alternative crystallographic surface orientation. The techniques are particularly useful with respect to gate-all-around and forksheet transistor configurations. A substrate having a (110) crystallographic surface orientation forms the basis for the growth of alternating types of semiconductor layers. Both n-channel and p-channel transistors may be fabricated using silicon nanoribbons formed from some of the alternating semiconductor layers. The crystallographic surface orientation of the Si nanoribbons will reflect the same crystallographic surface orientation of the substrate, which leads to a higher hole mobility across the Si nanoribbons of the p-channel devices and an overall improved CMOS device performance.
    Type: Application
    Filed: June 23, 2022
    Publication date: December 28, 2023
    Applicant: Intel Corporation
    Inventors: Seung Hoon Sung, Ashish Agrawal, Jack T. Kavalieros, Rambert Nahm, Natalie Briggs, Susmita Ghose, Glenn Glass, Devin R. Merrill, Aaron A. Budrevich, Shruti Subramanian, Biswajeet Guha, William Hsu, Adedapo A. Oni, Rahul Ramamurthy, Anupama Bowonder, Hsin-Ying Tseng, Rajat K. Paul, Marko Radosavljevic
  • Patent number: 11848362
    Abstract: Disclosed herein are IC structures, packages, and devices that include transistors, e.g., III-N transistors, having a source region, a drain region (together referred to as “source/drain” (S/D) regions), and a gate stack. In one aspect, a contact to at least one of the S/D regions of a transistor may have a width that is smaller than a width of the S/D region. In another aspect, a contact to a gate electrode material of the gate stack of a transistor may have a width that is smaller than a width of the gate electrode material. Reducing the width of contacts to S/D regions or gate electrode materials of a transistor may reduce the overlap area between various pairs of these contacts, which may, in turn, allow reducing the off-state capacitance of the transistor. Reducing the off-state capacitance of III-N transistors may advantageously allow increasing their switching frequency.
    Type: Grant
    Filed: April 18, 2019
    Date of Patent: December 19, 2023
    Assignee: Intel Corporation
    Inventors: Rahul Ramaswamy, Nidhi Nidhi, Walid M. Hafez, Johann Christian Rode, Han Wui Then, Marko Radosavljevic, Sansaptak Dasgupta
  • Publication number: 20230402513
    Abstract: An integrated circuit structure includes a device including a source region, a drain region, a body laterally between the source and drain regions, and a source contact coupled to the source region. In an example, the source region includes a first region, and a second region compositionally different from and above the first region. The source contact extends through the second region and extends within the first region. In an example where the device is a p-channel metal-oxide-semiconductor (PMOS) device, a concentration of germanium within the second region is different (e.g., higher) than a concentration of germanium within the first region. In another example where the device is a n-channel metal-oxide-semiconductor (NMOS) device, a doping concentration level of a dopant (e.g., an n-type dopant) within the second region is different (e.g., higher) from a doping concentration level of the dopant within the first region.
    Type: Application
    Filed: June 13, 2022
    Publication date: December 14, 2023
    Applicant: Intel Corporation
    Inventors: Rohit Galatage, Willy Rachmady, Subrina Rafique, Nitesh Kumar, Cheng-Ying Huang, Jami A. Wiedemer, Nicloe K. Thomas, Munzarin F. Qayyum, Patrick Morrow, Marko Radosavljevic, Mauro J. Kobrinsky
  • Publication number: 20230402507
    Abstract: An integrated circuit structure includes a second device stacked vertically above a first device. The first device includes (i) a first source or drain region, (ii) a first source or drain contact coupled to the first source or drain region, and (iii) a first layer comprising a first metal and first one or more semiconductor materials between at least a section of the first source or drain region and the first source or drain contact. The second device includes (i) a second source or drain region, (ii) a second source or drain contact coupled to the second source or drain region, and (iii) a second layer comprising a second metal and second one or more semiconductor materials between at least a section of the second source or drain region and the second source or drain contact. In an example, the first metal and the second metal are different.
    Type: Application
    Filed: June 13, 2022
    Publication date: December 14, 2023
    Applicant: Intel Corporation
    Inventors: Rohit Galatage, Willy Rachmady, Cheng-Ying Huang, Jami A. Wiedemer, Munzarin F. Qayyum, Nicole K. Thomas, Patrick Morrow, Marko Radosavljevic, Mauro J. Kobrinsky
  • Publication number: 20230395717
    Abstract: An integrated circuit structure includes a first device, and a second device laterally adjacent to the first device. The first device includes (i) a first source region, and a first source contact including a first conductive material, (ii) a first drain region, and a first drain contact including the first conductive material, and (iii) a first body laterally between the first source region and the first drain region. The second device includes (i) a second source region, and a second source contact including a second conductive material, (ii) a second drain region, and a second drain contact including the second conductive material, and (iii) a second body laterally between the second source region and the second drain region. The first and second conductive materials are compositionally different. The first conductive material induces compressive strain on the first body, and the second conductive material induces tensile strain on the second body.
    Type: Application
    Filed: June 6, 2022
    Publication date: December 7, 2023
    Applicant: Intel Corporation
    Inventors: Willy Rachmady, Nitesh Kumar, Jami A. Wiedemer, Cheng-Ying Huang, Marko Radosavljevic, Mauro J. Kobrinsky, Patrick Morrow, Rohit Galatage, David N. Goldstein, Christopher J. Jezewski
  • Publication number: 20230395678
    Abstract: A semiconductor structure includes an upper device stacked over a lower device. In an example, the upper device includes (i) a first source region, (ii) a first drain region, (iii) a body of semiconductor material extending laterally from the first source region to the first drain region, and (iv) a first gate structure at least in part wrapped around the body. In an example, the lower device includes (i) a second source region, (ii) a second drain region, and (iii) a second gate structure at least in part laterally between the second source region and the second drain region. In an example, the lower device lacks a body of semiconductor material extending laterally from the second source region to the second drain region. In another example, the upper device lacks a body of semiconductor material extending laterally from the first source region to the first drain region.
    Type: Application
    Filed: June 3, 2022
    Publication date: December 7, 2023
    Applicant: Intel Corporation
    Inventors: Munzarin F. Qayyum, Nicole K. Thomas, Jami A. Wiedemer, Jack T. Kavalieros, Marko Radosavljevic, Willy Rachmady, Cheng-Ying Huang, Rohit Galatage, Nitesh Kumar, Kai Loon Cheong, Venkata Vasiraju
  • Publication number: 20230395697
    Abstract: A semiconductor structure includes a second device stacked over a first device. In an example, the first device includes (i) a first source region, (ii) a first drain region, (iii) a body including a semiconductor material extending laterally from the first source region to the first drain region, and (iv) a first gate structure at least in part wrapped around the body. The body can be, for instance, a nanoribbon, nanosheet, or nanowire. In an example, the second device comprises (i) a second source region, (ii) a second drain region, and (iii) a second gate structure at least in part laterally between the second source region and the second drain region. In an example, the second device lacks a continuous body extending laterally from the second source region to the second drain region.
    Type: Application
    Filed: June 3, 2022
    Publication date: December 7, 2023
    Applicant: Intel Corporation
    Inventors: Nicole K. Thomas, Munzarin F. Qayyum, Marko Radosavljevic, Cheng-Ying Huang, Willy Rachmady, Rohit Galatage, Jami A. Wiedemer, David Bennett, Dincer Unluer, Venkata Aditya Addepalli
  • Publication number: 20230395718
    Abstract: An integrated circuit structure includes a vertical stack including a first device, and a second device above the first device. The first device includes (i) a first source and first drain region, (ii) a first body laterally between the first source and drain regions, (iii) a first source contact including a first conductive material, and (iv) a first drain contact including the first conductive material. The second device includes (i) a second source and second drain region, (ii) a second body laterally between the second source and drain regions, (iii) a second source contact including a second conductive material, and (iv) a second drain contact including the second conductive material. In an example, the first and second conductive materials are compositionally different. In an example, the first conductive material induces compressive strain on the first body, and the second conductive material induces tensile strain on the second body.
    Type: Application
    Filed: June 6, 2022
    Publication date: December 7, 2023
    Applicant: Intel Corporation
    Inventors: Willy Rachmady, Nitesh Kumar, Jami A. Wiedemer, Cheng-Ying Huang, Marko Radosavljevic, Mauro J. Kobrinsky, Patrick Morrow, Rohit Galatage, David N. Goldstein, Christopher J. Jezewski
  • Patent number: 11799057
    Abstract: Light emitting devices employing one or more Group III-Nitride polarization junctions. A III-N polarization junction may include two III-N material layers having opposite crystal polarities. The opposing polarities may induce a two-dimensional charge carrier sheet within each of the two III-N material layers. Opposing crystal polarities may be induced through introduction of an intervening material layer between two III-N material layers. Where a light emitting structure includes a quantum well (QW) structure between two Group III-Nitride polarization junctions, a 2D electron gas (2DEG) induced at a first polarization junction and/or a 2D hole gas (2DHG) induced at a second polarization junction on either side of the QW structure may supply carriers to the QW structure. An improvement in quantum efficiency may be achieved where the intervening material layer further functions as a barrier to carrier recombination outside of the QW structure.
    Type: Grant
    Filed: November 19, 2021
    Date of Patent: October 24, 2023
    Assignee: Intel Corporation
    Inventors: Han Wui Then, Sansaptak Dasgupta, Marko Radosavljevic
  • Patent number: 11791221
    Abstract: Disclosed herein are IC structures, packages, and devices that include III-N transistors integrated on the same support structure as non-III-N transistors (e.g., Si-based transistors), using semiconductor layer transfer. In one aspect, a non-III-N transistor may be integrated with an III-N transistor by, first, depositing a semiconductor material layer, a portion of which will later serve as a channel material of the non-III-N transistor, on a support structure different from that on which the III-N semiconductor material for the III-N transistor is provided, and then performing layer transfer of said semiconductor material layer to the support structure with the III-N material, e.g., by oxide-to-oxide bonding, advantageously enabling implementation of both types of transistors on a single support structure.
    Type: Grant
    Filed: February 22, 2019
    Date of Patent: October 17, 2023
    Assignee: Intel Corporation
    Inventors: Sansaptak Dasgupta, Marko Radosavljevic, Han Wui Then, Paul B. Fischer
  • Patent number: 11777022
    Abstract: Methods, apparatus, systems and articles of manufacture are disclosed for transistors including first and second semiconductor materials between source and drain regions. An example apparatus includes a first semiconductor material and a second semiconductor material adjacent the first semiconductor material. The example apparatus further includes a source proximate the first semiconductor material and spaced apart from the second semiconductor material. The example apparatus also includes a drain proximate the second semiconductor material and spaced apart from the first semiconductor material. The example apparatus includes a gate located between the source and the drain.
    Type: Grant
    Filed: January 12, 2018
    Date of Patent: October 3, 2023
    Assignee: Intel Corporation
    Inventors: Sansaptak Dasgupta, Marko Radosavljevic, Han Wui Then
  • Patent number: 11757027
    Abstract: Embodiments include a transistor and methods of forming such transistors. In an embodiment, the transistor comprises a semiconductor substrate, a barrier layer over the semiconductor substrate; a polarization layer over the barrier layer, an insulating layer over the polarization layer, a gate electrode through the insulating layer and the polarization layer, a spacer along sidewalls of the gate electrode, and a gate dielectric between the gate electrode and the barrier layer.
    Type: Grant
    Filed: December 13, 2018
    Date of Patent: September 12, 2023
    Assignee: Intel Corporation
    Inventors: Rahul Ramaswamy, Nidhi Nidhi, Walid M. Hafez, Johann C. Rode, Paul Fischer, Han Wui Then, Marko Radosavljevic, Sansaptak Dasgupta
  • Patent number: 11728346
    Abstract: A device including a III-N material is described. In an example, the device has a terminal structure with a central body and a first plurality of fins, and a second plurality of fins, opposite the first plurality of fins. A polarization charge inducing layer including a III-N material in the terminal structure. A gate electrode is disposed above and on a portion of the polarization charge inducing layer. A source structure is on the polarization charge inducing layer and on sidewalls of the first plurality of fins. A drain structure is on the polarization charge inducing layer and on sidewalls of the second plurality of fins. The device further includes a source structure and a drain structure on opposite sides of the gate electrode and a source contact on the source structure and a drain contact on the drain structure.
    Type: Grant
    Filed: October 14, 2021
    Date of Patent: August 15, 2023
    Assignee: Intel Corporation
    Inventors: Marko Radosavljevic, Han Wui Then, Sansaptak Dasgupta
  • Patent number: 11715790
    Abstract: Disclosed herein are IC structures, packages, and devices that include III-N transistors implementing various means by which their threshold voltage it tuned. In some embodiments, a III-N transistor may include a doped semiconductor material or a fixed charge material included in a gate stack of the transistor. In other embodiments, a III-N transistor may include a doped semiconductor material or a fixed charge material included between a gate stack and a III-N channel stack of the transistor. Including doped semiconductor or fixed charge materials either in the gate stack or between the gate stack and the III-N channel stack of III-N transistors adds charges, which affects the amount of 2DEG and, therefore, affects the threshold voltages of these transistors.
    Type: Grant
    Filed: April 22, 2019
    Date of Patent: August 1, 2023
    Assignee: Intel Corporation
    Inventors: Nidhi Nidhi, Marko Radosavljevic, Sansaptak Dasgupta, Yang Cao, Han Wui Then, Johann Christian Rode, Rahul Ramaswamy, Walid M. Hafez, Paul B. Fischer
  • Patent number: 11715791
    Abstract: A semiconductor-on-insulator (SOI) substrate with a compliant substrate layer advantageous for seeding an epitaxial III-N semiconductor stack upon which III-N devices (e.g., III-N HFETs) may be formed. The compliant layer may be (111) silicon, for example. The SOI substrate may further include another layer that may have one or more of lower electrical resistivity, greater thickness, or a different crystal orientation relative to the compliant substrate layer. A SOI substrate may include a (100) silicon layer advantageous for integrating Group IV devices (e.g., Si FETs), for example. To reduce parasitic coupling between an HFET and a substrate layer of relatively low electrical resistivity, one or more layers of the substrate may be removed within a region below the HFETs. Once removed, the resulting void may be backfilled with another material, or the void may be sealed, for example during back-end-of-line processing.
    Type: Grant
    Filed: September 28, 2017
    Date of Patent: August 1, 2023
    Assignee: Intel Corporation
    Inventors: Marko Radosavljevic, Han Wui Then, Sansaptak Dasgupta, Kevin Lin, Paul Fischer
  • Patent number: 11715799
    Abstract: Methods and apparatus to form silicon-based transistors on group III-nitride materials using aspect ratio trapping are disclosed. An example integrated circuit includes a group III-nitride substrate and a fin of silicon formed on the group III-nitride substrate. The integrated circuit further includes a first transistor formed on the fin of silicon and a second transistor formed on the group III-nitride substrate.
    Type: Grant
    Filed: November 15, 2021
    Date of Patent: August 1, 2023
    Assignee: Intel Corporation
    Inventors: Marko Radosavljevic, Sansaptak Dasgupta, Han Wui Then
  • Patent number: 11710765
    Abstract: A method for forming non-planar capacitors of desired dimensions is disclosed. The method is based on providing a three-dimensional structure of a first material over a substrate, enclosing the structure with a second material that is sufficiently etch-selective with respect to the first material, and then performing a wet etch to remove most of the first material but not the second material, thus forming a cavity within the second material. Shape and dimensions of the cavity are comparable to those desired for the final non-planar capacitor. At least one electrode of a capacitor may then be formed within the cavity. Using the etch selectivity of the first and second materials advantageously allows applying wet etch techniques for forming high aspect ratio openings in fabricating non-planar capacitors, which is easier and more reliable than relying on dry etch techniques.
    Type: Grant
    Filed: April 19, 2022
    Date of Patent: July 25, 2023
    Assignee: Intel Corporation
    Inventors: Marko Radosavljevic, Sansaptak Dasgupta, Han Wui Then
  • Patent number: 11699704
    Abstract: A semiconductor device comprising stacked complimentary transistors are described. In some embodiments, the semiconductor device comprises a first device comprising an enhancement mode III-N heterostructure field effect transistor (HFET), and a second device over the first device. In an example, the second device comprises a depletion mode thin film transistor. In an example, a connector is to couple a first terminal of the first device to a first terminal of the second device.
    Type: Grant
    Filed: September 28, 2017
    Date of Patent: July 11, 2023
    Assignee: INTEL CORPORATION
    Inventors: Van H. Le, Marko Radosavljevic, Han Wui Then, Willy Rachmady, Ravi Pillarisetty, Abhishek Sharma, Gilbert Dewey, Sansaptak Dasgupta
  • Publication number: 20230207446
    Abstract: Embodiments of the invention include a microelectronic device that includes a substrate, at least one dielectric layer on the substrate and a plurality of conductive lines within the at least one dielectric layer. The microelectronic device also includes an air gap structure that is located below two or more of the plurality of conductive lines.
    Type: Application
    Filed: February 17, 2023
    Publication date: June 29, 2023
    Applicant: Tahoe Research, Ltd.
    Inventors: Han Wui THEN, Sansaptak DASGUPTA, Marko RADOSAVLJEVIC, Sanaz K. GARDNER
  • Publication number: 20230207421
    Abstract: Technologies for thermoelectric enhanced cooling on an integrated circuit die are disclosed. In the illustrative embodiment, one or more components are created on a top side of an integrated circuit die, such as a power amplifier, logic circuitry, etc. The one or more components, in use, generate heat that needs to be carried away from the components. A thermoelectric cooler can be created on a back side of the die in order to facilitate removal of heat from the component. In some embodiments, additional structures such as vias filled with high-thermal-conductivity material may be used to further improve the removal of heat from the component.
    Type: Application
    Filed: December 23, 2021
    Publication date: June 29, 2023
    Applicant: Intel Corporation
    Inventors: Han Wui Then, Marko Radosavljevic, Sansaptak Dasgupta, Paul Fischer, Walid M. Hafez