Patents by Inventor Vinayak Veer VATS

Vinayak Veer VATS 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).

  • Patent number: 11942365
    Abstract: The disclosed technology generally relates to semiconductor structures and their fabrication, and more particularly to diffusion barrier structures containing Ti, Si, N and methods of forming same. A method of forming an electrically conductive diffusion barrier comprises providing a substrate in a reaction chamber and forming a titanium silicide (TiSi) region on the substrate by alternatingly exposing the substrate to a titanium-containing precursor and a first silicon-containing precursor. The method additionally comprises forming a titanium silicon nitride (TiSiN) region on the TiSi region by alternatingly exposing the substrate to a titanium-containing precursor, a nitrogen-containing precursor and a second silicon-containing precursor. The method can optionally include, prior to forming the TiSi region, forming a titanium nitride (TiN) region by alternatingly exposing the substrate to a titanium-containing precursor and a nitrogen-containing precursor.
    Type: Grant
    Filed: May 31, 2018
    Date of Patent: March 26, 2024
    Assignee: Eugenus, Inc.
    Inventors: Vinayak Veer Vats, M. Ziaul Karim, Bo Seon Choi, Somilkumar J. Rathi, Niloy Mukherjee
  • Publication number: 20230151488
    Abstract: A method for ALD coating of a substrate with a layer containing Ti, Si, N, wherein a reaction gas and then a flushing gas are introduced into a process chamber holding the substrate in a plurality of successive steps, each in one or more cycles, wherein TiN is deposited in a first step with a reaction gas containing Ti and a reaction gas containing N, TiSi is deposited in a second step with a reaction gas containing Ti and a reaction gas containing Si, and in a third step following the second step, TiSiN is deposited with a reaction gas containing Ti, with a reaction gas containing N and with a reaction gas containing Si.
    Type: Application
    Filed: June 23, 2022
    Publication date: May 18, 2023
    Inventors: Vinayak Veer Vats, M. Ziaul Karim, Bo Seon Choi
  • Patent number: 11401607
    Abstract: A method for ALD coating of a substrate with a layer containing Ti, Si, N, wherein a reaction gas and then a flushing gas are introduced into a process chamber holding the substrate in a plurality of successive steps, each in one or more cycles, wherein TiN is deposited in a first step with a reaction gas containing Ti and a reaction gas containing N, TiSi is deposited in a second step with a reaction gas containing Ti and a reaction gas containing Si, and in a third step following the second step, TiSiN is deposited with a reaction gas containing Ti, with a reaction gas containing N and with a reaction gas containing Si.
    Type: Grant
    Filed: June 2, 2017
    Date of Patent: August 2, 2022
    Assignee: Eugenus, Inc.
    Inventors: Vinayak Veer Vats, M. Ziaul Karim, Bo Seon Choi
  • Patent number: 11276570
    Abstract: Exemplary processing methods may include forming a first deposition plasma of a silicon-and-nitrogen-containing precursor. The methods may include depositing a first portion of a silicon nitride material on a semiconductor substrate with the first deposition plasma. A first treatment plasma of a helium-and-nitrogen-containing precursor may be formed to treat the first portion of the silicon nitride material with the first treatment plasma. A second deposition plasma may deposit a second portion of a silicon nitride material, and a second treatment plasma may treat the second portion of the silicon nitride material. A flow rate ratio of helium-to-nitrogen in the first treatment plasma may be lower than a He/N2 flow rate ratio in the second treatment plasma. A first power level from a plasma power source that forms the first treatment plasma may be lower than a second power level that forms the second treatment plasma.
    Type: Grant
    Filed: July 22, 2020
    Date of Patent: March 15, 2022
    Assignee: Applied Materials, Inc.
    Inventors: Vinayak Veer Vats, Byung Kook Ahn, SeoYoung Lee, Hang Yu
  • Publication number: 20220028680
    Abstract: Exemplary processing methods may include forming a first deposition plasma of a silicon-and-nitrogen-containing precursor. The methods may include depositing a first portion of a silicon nitride material on a semiconductor substrate with the first deposition plasma. A first treatment plasma of a helium-and-nitrogen-containing precursor may be formed to treat the first portion of the silicon nitride material with the first treatment plasma. A second deposition plasma may deposit a second portion of a silicon nitride material, and a second treatment plasma may treat the second portion of the silicon nitride material. A flow rate ratio of helium-to-nitrogen in the first treatment plasma may be lower than a He/N2 flow rate ratio in the second treatment plasma. A first power level from a plasma power source that forms the first treatment plasma may be lower than a second power level that forms the second treatment plasma.
    Type: Application
    Filed: July 22, 2020
    Publication date: January 27, 2022
    Applicant: Applied Materials, Inc.
    Inventors: Vinayak Veer Vats, Byung Kook Ahn, SeoYoung Lee, Hang Yu
  • Patent number: 11217443
    Abstract: Embodiments disclosed herein include methods of forming high quality silicon nitride films. In an embodiment, a method of depositing a film on a substrate may comprise forming a silicon nitride film over a surface of the substrate in a first processing volume with a deposition process, and treating the silicon nitride film in a second processing volume, wherein treating the silicon nitride film comprises exposing the film to a plasma induced by a modular high-frequency plasma source. In an embodiment, a sheath potential of the plasma is less than 100 V, and a power density of the high-frequency plasma source is approximately 5 W/cm2 or greater, approximately 10 W/cm2 or greater, or approximately 20 W/cm2 or greater.
    Type: Grant
    Filed: November 6, 2019
    Date of Patent: January 4, 2022
    Assignee: Applied Materials, Inc.
    Inventors: Vinayak Veer Vats, Hang Yu, Philip Allan Kraus, Sanjay G. Kamath, William John Durand, Lakmal Charidu Kalutarage, Abhijit B. Mallick, Changling Li, Deenesh Padhi, Mark Joseph Saly, Thai Cheng Chua, Mihaela A. Balseanu
  • Patent number: 11157661
    Abstract: A process development visualization tool generates a first visualization of a parameter associated with a manufacturing process, and provides a GUI control element associated with a process variable of the manufacturing process, wherein the GUI control element has a first setting associated with a first value for the process variable. The process development tool receives a user input to adjust the GUI control element from the first setting to a second setting, determines a second value for the process variable based on the second setting, and determines a second set of values for the parameter that are associated with the second value for the process variable. The process development tool then generates a second visualization of the parameter, wherein the second visualization represents the second set of values for the parameter that are associated with the second value for the process variable.
    Type: Grant
    Filed: December 16, 2019
    Date of Patent: October 26, 2021
    Assignee: Applied Materials, Inc.
    Inventors: Vinayak Veer Vats, Sidharth Bhatia, Garrett Ho-Yee Sin, Pramod Nambiar, Hang Yu, Sanjay Kamath, Deenesh Padhi, Heng-Cheng Pai
  • Patent number: 10950430
    Abstract: Embodiments of the present disclosure relate to methods for in-situ deposition and treatment of a thin film for improved step coverage. In one embodiment, the method for processing a substrate is provided. The method includes forming a dielectric layer on patterned features of the substrate by exposing the substrate to a gas mixture of a first precursor and a second precursor simultaneously with plasma present in a process chamber, wherein the plasma is formed by a first pulsed RF power, exposing the dielectric layer to a first plasma treatment using a gas mixture of nitrogen and helium in the process chamber, and performing a plasma etch process by exposing the dielectric layer to a plasma formed from a gas mixture of a fluorine-containing precursor and a carrier gas, wherein the plasma is formed in the process chamber by a second pulsed RF power.
    Type: Grant
    Filed: June 18, 2019
    Date of Patent: March 16, 2021
    Assignee: Applied Materials, Inc.
    Inventors: Vinayak Veer Vats, Hang Yu, Deenesh Padhi, Changling Li, Gregory M. Amico, Sanjay G. Kamath
  • Publication number: 20200202044
    Abstract: A process development visualization tool generates a first visualization of a parameter associated with a manufacturing process, and provides a GUI control element associated with a process variable of the manufacturing process, wherein the GUI control element has a first setting associated with a first value for the process variable. The process development tool receives a user input to adjust the GUI control element from the first setting to a second setting, determines a second value for the process variable based on the second setting, and determines a second set of values for the parameter that are associated with the second value for the process variable. The process development tool then generates a second visualization of the parameter, wherein the second visualization represents the second set of values for the parameter that are associated with the second value for the process variable.
    Type: Application
    Filed: December 16, 2019
    Publication date: June 25, 2020
    Inventors: Vinayak Veer Vats, Sidharth Bhatia, Garrett Ho-Yee Sin, Pramod Nambiar, Hang Yu, Sanjay Kamath, Deenesh Padhi, Heng-Cheng Pai
  • Publication number: 20200176241
    Abstract: Embodiments disclosed herein include methods of forming high quality silicon nitride films. In an embodiment, a method of depositing a film on a substrate may comprise forming a silicon nitride film over a surface of the substrate in a first processing volume with a deposition process, and treating the silicon nitride film in a second processing volume, wherein treating the silicon nitride film comprises exposing the film to a plasma induced by a modular high-frequency plasma source. In an embodiment, a sheath potential of the plasma is less than 100 V, and a power density of the high-frequency plasma source is approximately 5 W/cm2 or greater, approximately 10 W/cm2 or greater, or approximately 20 W/cm2 or greater.
    Type: Application
    Filed: November 6, 2019
    Publication date: June 4, 2020
    Inventors: Vinayak Veer Vats, Hang Yu, Philip Allan Kraus, Sanjay G. Kamath, William John Durand, Lakmal Charidu Kalutarage, Abhijit B. Mallick, Changling Li, Deenesh Padhi, Mark Joseph Saly, Thai Cheng Chua, Mihaela A. Balseanu
  • Publication number: 20190385844
    Abstract: Embodiments of the present disclosure relate to methods for in-situ deposition and treatment of a thin film for improved step coverage. In one embodiment, the method for processing a substrate is provided. The method includes forming a dielectric layer on patterned features of the substrate by exposing the substrate to a gas mixture of a first precursor and a second precursor simultaneously with plasma present in a process chamber, wherein the plasma is formed by a first pulsed RF power, exposing the dielectric layer to a first plasma treatment using a gas mixture of nitrogen and helium in the process chamber, and performing a plasma etch process by exposing the dielectric layer to a plasma formed from a gas mixture of a fluorine-containing precursor and a carrier gas, wherein the plasma is formed in the process chamber by a second pulsed RF power.
    Type: Application
    Filed: June 18, 2019
    Publication date: December 19, 2019
    Inventors: Vinayak Veer VATS, Hang YU, Deenesh PADHI, Changling LI, Gregory M. AMICO, Sanjay G. KAMATH
  • Publication number: 20180347040
    Abstract: A method for ALD coating of a substrate with a layer containing Ti, Si, N, wherein a reaction gas and then a flushing gas are introduced into a process chamber holding the substrate in a plurality of successive steps, each in one or more cycles, wherein TiN is deposited in a first step with a reaction gas containing Ti and a reaction gas containing N, TiSi is deposited in a second step with a reaction gas containing Ti and a reaction gas containing Si, and in a third step following the second step, TiSiN is deposited with a reaction gas containing Ti, with a reaction gas containing N and with a reaction gas containing Si.
    Type: Application
    Filed: June 2, 2017
    Publication date: December 6, 2018
    Inventors: Vinayak Veer VATS, M. Ziaul KARIM, Bo Seon CHOI
  • Publication number: 20180350657
    Abstract: The disclosed technology generally relates to semiconductor structures and their fabrication, and more particularly to diffusion barrier structures containing Ti, Si, N and methods of forming same. A method of forming an electrically conductive diffusion barrier comprises providing a substrate in a reaction chamber and forming a titanium silicide (TiSi) region on the substrate by alternatingly exposing the substrate to a titanium-containing precursor and a first silicon-containing precursor. The method additionally comprises forming a titanium silicon nitride (TiSiN) region on the TiSi region by alternatingly exposing the substrate to a titanium-containing precursor, a nitrogen-containing precursor and a second silicon-containing precursor. The method can optionally include, prior to forming the TiSi region, forming a titanium nitride (TiN) region by alternatingly exposing the substrate to a titanium-containing precursor and a nitrogen-containing precursor.
    Type: Application
    Filed: May 31, 2018
    Publication date: December 6, 2018
    Inventors: Vinayak Veer Vats, M. Ziaul Karim, Bo Seon Choi, Somilkumar J. Rathi, Niloy Mukherjee