Patents by Inventor Nagraj Shankar
Nagraj Shankar 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).
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Patent number: 11869770Abstract: Methods, systems, and computer programs are presented for selective deposition of etch-stop layers for enhanced patterning during semiconductor manufacturing. One method includes an operation for adding a photo-resist material (M2) on top of a base material (M1) of a substrate, M2 defining a pattern for etching M1 in areas where M2 is not present above M1. The method further includes operations for conformally capping the substrate with an oxide material (M3) after adding M2, and for gap filling the substrate with filling material M4 after the conformally capping. Further, a stop-etch material (M5) is selectively grown on exposed surfaces of M3 and not on surfaces of M4 after the gap filling. Additionally, the method includes operations for removing M4 from the substrate after selectively growing M5, and for etching the substrate after removing M4 to transfer the pattern into M1. M5 adds etching protection to enable deeper etching into M1.Type: GrantFiled: July 29, 2021Date of Patent: January 9, 2024Assignee: Lam Research CorporationInventors: Nagraj Shankar, Kapu Sirish Reddy, Jon Henri, Pengyi Zhang, Elham Mohimi, Bhavin Jariwala, Arpan Pravin Mahorowala
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Patent number: 11859282Abstract: Various embodiments include an apparatus to supply gases to a tool. In various examples, the apparatus includes a point-of-use (POU) valve manifold that includes a manifold body to couple to a chamber of the tool. The manifold body has multiple gas outlet ports. A purge-gas outlet port of the manifold body is directed substantially toward the outlet ports. For each of multiple gases to be input to the POU-valve manifold, the POU-valve manifold further includes: a first valve coupled to the manifold body and a divert valve coupled to the first valve. The first valve can be coupled to a gas supply and has a separate gas flow path internal to the manifold body and separate from remaining ones of the gas flow paths. The divert valve diverts the gas during a period when the precursor gas is not to be directed into the chamber by the first valve. Other examples are disclosed.Type: GrantFiled: July 26, 2022Date of Patent: January 2, 2024Assignee: Lam Research CorporationInventors: Damodar Rajaram Shanbhag, Nagraj Shankar
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Publication number: 20230366089Abstract: In some examples, a faceless showerhead comprises a body including a backing plate, the body devoid of a faceplate or plenum; a gas supply stem to admit gas into the showerhead; and a baffle supported adjacent the backing plate or the gas supply stem. The faceless showerhead may further comprise at least one support element for supporting the baffle in a baffle cavity in the backing plate or the gas supply stem.Type: ApplicationFiled: October 8, 2021Publication date: November 16, 2023Inventors: Shriram Vasant Bapat, Pankaj Ghanshyam Ramnani, Brian Joseph Williams, Christopher Matthew Jones, Curtis W. Bailey, Emile Draper, Nagraj Shankar
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Publication number: 20220372619Abstract: Various embodiments include an apparatus to supply gases to a tool. In various examples, the apparatus includes a point-of-use (POU) valve manifold that includes a manifold body to couple to a chamber of the tool. The manifold body has multiple gas outlet ports. A purge-gas outlet port of the manifold body is directed substantially toward the outlet ports. For each of multiple gases to be input to the POU-valve manifold, the POU-valve manifold further includes: a first valve coupled to the manifold body and a divert valve coupled to the first valve. The first valve can be coupled to a gas supply and has a separate gas flow path internal to the manifold body and separate from remaining ones of the gas flow paths. The divert valve diverts the gas during a period when the precursor gas is not to be directed into the chamber by the first valve. Other examples are disclosed.Type: ApplicationFiled: July 26, 2022Publication date: November 24, 2022Inventors: Damodar Rajaram Shanbhag, Nagraj Shankar
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Patent number: 11427908Abstract: Various embodiments include an apparatus to supply precursor gases to a processing tool. In various examples, the apparatus includes a point-of-use (POU) valve manifold that includes a manifold body to couple to a processing chamber of the processing tool. The manifold body has a multiple precursor-gas outlet ports surrounded by an annulus. A purge-gas outlet port of the manifold body is directed substantially toward interior walls of the annulus. For each of multiple precursor gases, the POU-valve manifold further includes: a first valve coupled to the manifold body and a divert valve coupled to the first valve. The first valve can be coupled to a precursor-gas supply and has a separate precursor-gas flow path internal to the manifold body. The divert valve diverts the precursor gas during a period when the precursor gas is not to be directed into the processing chamber by the first valve. Other examples are disclosed.Type: GrantFiled: January 30, 2019Date of Patent: August 30, 2022Assignee: Lam Research CorporationInventors: Damodar Rajaram Shanbhag, Nagraj Shankar
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Publication number: 20220051938Abstract: Methods for forming patterned multi-layer stacks including a metal-containing layer are provided herein. Methods involve using silicon-containing non-metal materials in a multi-layer stack including one sacrificial layer to be later removed and replaced with metal while maintaining etch contrast to pattern the multi-layer stack and selectively remove the sacrificial layer prior to depositing metal. Methods involve using silicon oxycarbide in lieu of silicon nitride, and a sacrificial non-metal material in lieu of a metal-containing layer, to fabricate the multi-layer stack, pattern the multi-layer stack, selectively remove the sacrificial non-metal material to leave spaces in the stack, and deposit metal-containing material into the spaces. Sacrificial non-metal materials include silicon nitride and doped polysilicon, such as boron-doped silicon.Type: ApplicationFiled: September 10, 2019Publication date: February 17, 2022Inventors: Hui-Jung Wu, Bart J. van Schravendijk, Mark Naoshi Kawaguchi, Gereng Gunawan, Jay E. Uglow, Nagraj Shankar, Gowri Channa Kamarthy, Kevin M. McLaughlin, Ananda K. Banerji, Jialing Yang, John Hoang, Aaron Lynn Routzahn, Nathan Musselwhite, Meihua Shen, Thorsten Bernd Lill, Hao Chi, Nicholas Dominic Altieri
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Publication number: 20210358753Abstract: Methods, systems, and computer programs are presented for selective deposition of etch-stop layers for enhanced patterning during semiconductor manufacturing. One method includes an operation for adding a photo-resist material (M2) on top of a base material (M1) of a substrate, M2 defining a pattern for etching M1 in areas where M2 is not present above M1. The method further includes operations for conformally capping the substrate with an oxide material (M3) after adding M2, and for gap tilling the substrate with filling material M4 after the conformally capping. Further, a stop-etch material (M5) is selectively grown on exposed surfaces of M3 and not on surfaces of M4 after the gap filling. Additionally, the method includes operations for removing M4 from the substrate after selectively growing M5, and for etching the substrate after removing M4 to transfer the pattern into M1. M5 adds etching protection to enable deeper etching into M1.Type: ApplicationFiled: July 29, 2021Publication date: November 18, 2021Inventors: Nagraj Shankar, Kapu Sirish Reddy, Jon Henri, Pengyi Zhang, Elham Mohimi, Bhavin Jariwala, Arpan Pravin Mahorowala
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Publication number: 20210320004Abstract: A method for depositing a nitride layer over an oxide layer to form an oxide-nitride stack is provided. The method includes supplying an inert gas to a plasma enhanced chemical vapor deposition (PECVD) reactor that supports a substrate having said oxide layer. Then, providing power to an electrode of the PECVD reactor, where the power is configured to strike a plasma. Then, flowing reactant gases into the PECVD reactor. The reactant gases include a first percentage by volume of ammonia (NH3), a second percentage by volume of nitrogen (N2), a third percentage by volume of silane (SiH4) and a fourth percentage by volume of an oxidizer. The fourth percentage by volume of said oxidizer is at least 0.5 percent by volume and less than about 8 percent by volume. Then, continuing to flow the reactant gases into the PECVD reactor until the nitride layer is determined to achieve a target thickness over the oxide layer.Type: ApplicationFiled: October 8, 2019Publication date: October 14, 2021Inventors: Pramod Subramonium, Nagraj Shankar, Malay Milan Samantaray, Katsunori Yoshizawa, Bart J. VanSchravendijk
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Patent number: 11094542Abstract: Methods, systems, and computer programs are presented for selective deposition of etch-stop layers for enhanced patterning during semiconductor manufacturing. One method includes an operation for adding a photo-resist material (M2) on top of a base material (M1) of a substrate, M2 defining a pattern for etching M1 in areas where M2 is not present above M1. The method further includes operations for conformally capping the substrate with an oxide material (M3) after adding M2, and for gap filling the substrate with filling material M4 after the conformally capping. Further, a stop-etch material (M5) is selectively grown on exposed surfaces of M3 and not on surfaces of M4 after the gap filling. Additionally, the method includes operations for removing M4 from the substrate after selectively growing M5, and for etching the substrate after removing M4 to transfer the pattern into M1. M5 adds etching protection to enable deeper etching into M1.Type: GrantFiled: January 15, 2020Date of Patent: August 17, 2021Assignee: Lam Research CorporationInventors: Nagraj Shankar, Kapu Sirish Reddy, Jon Henri, Pengyi Zhang, Elham Mohimi, Bhavin Jariwala, Arpan Pravin Mahorowala
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Patent number: 10998187Abstract: Methods are provided for conducting a deposition on a semiconductor substrate by selectively depositing a material on the substrate. The substrate has a plurality of substrate materials, each with a different nucleation delay corresponding to the material deposited thereon. Specifically, the nucleation delay associated with a first substrate material on which deposition is intended is less than the nucleation delay associated with a second substrate material on which deposition is not intended according to a nucleation delay differential, which degrades as deposition proceeds. A portion of the deposited material is etched to reestablish the nucleation delay differential between the first and the second substrate materials. The material is further selectively deposited on the substrate.Type: GrantFiled: December 13, 2019Date of Patent: May 4, 2021Assignee: LAM RESEARCH CORPORATIONInventors: Kapu Sirish Reddy, Meliha Gozde Rainville, Nagraj Shankar, Dennis M. Hausmann, David Charles Smith, Karthik Sivaramakrishnan, David W. Porter
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Publication number: 20210040611Abstract: Various embodiments include an apparatus to supply precursor gases to a processing tool. In various examples, the apparatus includes a point-of-use (POU) valve manifold that includes a manifold body to couple to a processing chamber of the processing tool. The manifold body has a multiple precursor-gas outlet ports surrounded by an annulus. A purge-gas outlet port of the manifold body is directed substantially toward interior walls of the annulus. For each of multiple precursor gases, the POU-valve manifold further includes: a first valve coupled to the manifold body and a divert valve coupled to the first valve. The first valve can be coupled to a precursor-gas supply and has a separate precursor-gas flow path internal to the manifold body. The divert valve diverts the precursor gas during a period when the precursor gas is not to be directed into the processing chamber by the first valve. Other examples are disclosed.Type: ApplicationFiled: January 30, 2019Publication date: February 11, 2021Inventors: Damodar Rajaram Shanbhag, Nagraj Shankar
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Patent number: 10900124Abstract: A showerhead for a substrate processing chamber includes: inner walls; an inner plenum between the inner walls; and a faceplate having a first surface and a second surface that is opposite the first surface. Holes through the faceplate extend from the first surface to the second surface. A first inlet is fluidly connected to the inner plenum. A first outer plenum is between the inner walls and outer walls. A second outer plenum is between the inner walls and the outer walls. Coolant: fluidly connect the first outer plenum with the second outer plenum; are located within the faceplate between the first and second surfaces; and are fluidly isolated from the holes. The showerhead also includes a second inlet that is fluidly connected to the first outer plenum.Type: GrantFiled: June 12, 2018Date of Patent: January 26, 2021Assignee: LAM RESEARCH CORPORATIONInventors: Damodar Rajaram Shanbhag, Nagraj Shankar
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Patent number: 10804144Abstract: Aluminum oxide films with a thickness of between about 10-50 ?, characterized by a dielectric constant (k) of less than about 7 (such as about 4-6) and having a density of at least about 2.5 g/cm3 (such as about 3.0-3.2 g/cm3) are deposited on partially fabricated semiconductor devices over a metal (e.g., cobalt or copper) such that the metal does not show signs of oxidation. In some embodiments, the films are etch stop films.Type: GrantFiled: April 17, 2020Date of Patent: October 13, 2020Assignee: Lam Research CorporationInventors: Meliha Gozde Rainville, Nagraj Shankar, Kapu Sirish Reddy, Dennis M. Hausmann
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Patent number: 10745806Abstract: Showerheads for independently delivering different, mutually-reactive process gases to a wafer processing space are provided. The showerheads include a first gas distributor that has multiple plenum structures that are separated from one another by a gap, as well as a second gas distributor positioned above the first gas distributor. Isolation gas from the second gas distributor may be flowed down onto the first gas distributor and through the gaps in between the plenum structures of the first gas distributor, thereby establishing an isolation gas curtain that prevents the process gases released from each plenum structure from parasitically depositing on the plenum structures that provide other gases.Type: GrantFiled: November 1, 2019Date of Patent: August 18, 2020Assignee: Lam Research CorporationInventors: Nagraj Shankar, Jeffrey D. Womack, Meliha Gozde Rainville, Emile C. Draper, Pankaj G. Ramnani, Feng Bi, Pengyi Zhang, Elham Mohimi, Kapu Sirish Reddy
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Publication number: 20200251384Abstract: Aluminum oxide films with a thickness of between about 10-50 ?, characterized by a dielectric constant (k) of less than about 7 (such as about 4-6) and having a density of at least about 2.5 g/cm3 (such as about 3.0-3.2 g/cm3) are deposited on partially fabricated semiconductor devices over a metal (e.g., cobalt or copper) such that the metal does not show signs of oxidation. In some embodiments, the films are etch stop films.Type: ApplicationFiled: April 17, 2020Publication date: August 6, 2020Inventors: Meliha Gozde Rainville, Nagraj Shankar, Kapu Sirish Reddy, Dennis M. Hausmann
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Publication number: 20200168466Abstract: Methods, systems, and computer programs are presented for selective deposition of etch-stop layers for enhanced patterning during semiconductor manufacturing. One method includes an operation for adding a photo-resist material (M2) on top of a base material (M1) of a substrate, M2 defining a pattern for etching M1 in areas where M2 is not present above M1. The method further includes operations for conformally capping the substrate with an oxide material (M3) after adding M2, and for gap filling the substrate with filling material M4 after the conformally capping. Further, a stop-etch material (M5) is selectively grown on exposed surfaces of M3 and not on surfaces of M4 after the gap filling. Additionally, the method includes operations for removing M4 from the substrate after selectively growing M5, and for etching the substrate after removing M4 to transfer the pattern into M1. M5 adds etching protection to enable deeper etching into M1.Type: ApplicationFiled: January 15, 2020Publication date: May 28, 2020Inventors: Nagraj Shankar, Kapu Sirish Reddy, Jon Henri, Pengyi Zhang, Elham Mohimi, Bhavin Jariwala, Arpan Pravin Mahorowala
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Patent number: 10665501Abstract: Aluminum oxide films characterized by a dielectric constant (k) of less than about 7 (such as between about 4-6) and having a density of at least about 2.5 g/cm3 (such as about 3.0-3.2 g/cm3) are deposited on partially fabricated semiconductor devices over both metal and dielectric to serve as etch stop layers. The films are deposited using a deposition method that does not lead to oxidative damage of the metal. The deposition involves reacting an aluminum-containing precursor (e.g., a trialkylaluminum) with an alcohol and/or aluminum alkoxide. In one implementation the method involves flowing trimethylaluminum to the process chamber housing a substrate having an exposed metal and dielectric layers; purging and/or evacuating the process chamber; flowing t-butanol to the process chamber and allowing it to react with trimethylaluminum to form an aluminum oxide film and repeating the process steps until the film of desired thickness is formed.Type: GrantFiled: November 22, 2017Date of Patent: May 26, 2020Assignee: Lam Research CorporationInventors: Meliha Gozde Rainville, Nagraj Shankar, Kapu Sirish Reddy, Dennis M. Hausmann
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Patent number: 10651080Abstract: Thin AlN films are oxidatively treated in a plasma to form AlO and AlON films without causing damage to underlying layers of a partially fabricated semiconductor device (e.g., to underlying metal and/or dielectric layers). The resulting AlO and AlON films are characterized by improved leakage current compared to the AlN film and are suitable for use as etch stop layers. The oxidative treatment involves contacting the substrate having an exposed AlN layer with a plasma formed in a process gas comprising an oxygen-containing gas and a hydrogen-containing gas. In some implementations oxidative treatment is performed with a plasma formed in a process gas including CO2 as an oxygen-containing gas, H2 as a hydrogen-containing gas, and further including a diluent gas. The use of a hydrogen-containing gas in the plasma eliminates the oxidative damage to the underlying layers.Type: GrantFiled: June 28, 2016Date of Patent: May 12, 2020Assignee: Lam Research CorporationInventors: Meliha Gozde Rainville, Nagraj Shankar, Daniel Damjanovic, Kapu Sirish Reddy
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Patent number: 10643889Abstract: A method of improving selectivity of a metal in a selective deposition process. A pre-treatment process for the metal modifies the metal surface, and includes first reducing the metal to remove organic contamination from the metal followed by oxidation of the metal to allow a monolayer of a metal oxide to grow on the surface. This modification of the metal allows inhibitor molecules to adsorb on the metal oxide monolayer to improve selectivity.Type: GrantFiled: August 6, 2018Date of Patent: May 5, 2020Assignee: Lam Rasearch CorporationInventors: Dennis Hausmann, Elham Mohimi, Pengyi Zhang, Paul C. Lemaire, Kashish Sharma, Alexander R. Fox, Nagraj Shankar, Kapu Sirish Reddy, David Charles Smith
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Publication number: 20200118809Abstract: Methods are provided for conducting a deposition on a semiconductor substrate by selectively depositing a material on the substrate. The substrate has a plurality of substrate materials, each with a different nucleation delay corresponding to the material deposited thereon. Specifically, the nucleation delay associated with a first substrate material on which deposition is intended is less than the nucleation delay associated with a second substrate material on which deposition is not intended according to a nucleation delay differential, which degrades as deposition proceeds. A portion of the deposited material is etched to reestablish the nucleation delay differential between the first and the second substrate materials. The material is further selectively deposited on the substrate.Type: ApplicationFiled: December 13, 2019Publication date: April 16, 2020Inventors: Kapu Sirish Reddy, Meliha Gozde Rainville, Nagraj Shankar, Dennis M. Hausmann, David Charles Smith, Karthik Sivaramakrishnan, David W. Porter