Patents by Inventor Anish Khandekar

Anish Khandekar 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: 10269819
    Abstract: Some embodiments include a method of forming vertically-stacked memory cells. An opening is formed through a stack of alternating insulative and conductive levels. Cavities are formed to extend into the conductive levels along sidewalls of the opening. At least one of the cavities is formed to be shallower than one or more others of the cavities. Charge-blocking dielectric and charge-storage structures are formed within the cavities. Some embodiments include an integrated structure having a stack of alternating insulative and conductive levels. Cavities extend into the conductive levels. At least one of the cavities is shallower than one or more others of the cavities by at least about 2 nanometers. Charge-blocking dielectric is within the cavities. Charge-storage structures are within the cavities.
    Type: Grant
    Filed: April 25, 2017
    Date of Patent: April 23, 2019
    Assignee: Micron Technology, Inc.
    Inventors: Hongbin Zhu, Gordon A. Haller, Charles H. Dennison, Anish A. Khandekar, Brett D. Lowe, Lining He, Brian Cleereman
  • Publication number: 20180331120
    Abstract: A method comprises forming material to be etched over a substrate. An etch mask comprising a silicon nitride-comprising region is formed elevationally over the material. The etch mask comprises an elevationally-extending mask opening in the silicon nitride-comprising region that has a minimum horizontal open dimension that is greater in an elevationally-innermost portion of the region than in an elevationally-outermost portion of the region. The elevationally-outermost portion has a greater etch rate in at least one of HF and H3PO4 than does the elevationally-innermost portion. The etch mask is used as a mask while etching an elevationally-extending mask opening into the material. The silicon nitride-comprising region is exposed to at least one of HF and H3PO4 to increase the minimum horizontal open dimension in the elevationally-outermost portion to a greater degree than increase, if any, in the minimum horizontal open dimension in the elevationally-innermost portion.
    Type: Application
    Filed: July 20, 2018
    Publication date: November 15, 2018
    Applicant: Micron Technology, Inc.
    Inventors: Fei Wang, Tom J. John, Kunal Shrotri, Anish A. Khandekar, Aaron R. Wilson, John D. Hopkins, Derek F. Lundberg
  • Patent number: 10121799
    Abstract: A method comprises forming material to be etched over a substrate. An etch mask comprising a silicon nitride-comprising region is formed elevationally over the material. The etch mask comprises an elevationally-extending mask opening in the silicon nitride-comprising region that has a minimum horizontal open dimension that is greater in an elevationally-innermost portion of the region than in an elevationally-outermost portion of the region. The elevationally-outermost portion has a greater etch rate in at least one of HF and H3PO4 than does the elevationally-innermost portion. The etch mask is used as a mask while etching an elevationally-extending mask opening into the material. The silicon nitride-comprising region is exposed to at least one of HF and H3PO4 to increase the minimum horizontal open dimension in the elevationally-outermost portion to a greater degree than increase, if any, in the minimum horizontal open dimension in the elevationally-innermost portion.
    Type: Grant
    Filed: December 21, 2017
    Date of Patent: November 6, 2018
    Assignee: Micron Technology, Inc.
    Inventors: Fei Wang, Tom J. John, Kunal Shrotri, Anish A. Khandekar, Aaron R. Wilson, John D. Hopkins, Derek F. Lundberg
  • Publication number: 20180294272
    Abstract: 3D NAND memory structures and related method are provided. In some embodiments such structures can include a control gate material and a floating gate material disposed between a first insulating layer and a second insulating layer, an interpoly dielectric (IPD) layer disposed between the floating gate material and control gate material such that the IPD layer electrically isolates the control gate material from the floating gate material, and a tunnel dielectric material deposited on the floating gate material opposite the control gate material.
    Type: Application
    Filed: October 30, 2017
    Publication date: October 11, 2018
    Applicant: Intel Corporation
    Inventors: Darwin Fan, Sateesh Koka, Gordon Haller, John Hopkins, Shyam Surthi, Anish Khandekar
  • Publication number: 20180294275
    Abstract: A method of forming poly silicon comprises forming a first polysilicon-comprising material over a substrate, with the first polysilicon-comprising material comprising at least one of elemental carbon and elemental nitrogen at a total of 0.1 to 20 atomic percent. A second polysilicon-comprising material is formed over the first polysilicon-comprising material. The second polysilicon-comprising material comprises less, if any, total elemental carbon and elemental nitrogen than the first polysilicon-comprising material. Other aspects and embodiments, including structure independent of method of manufacture, are disclosed.
    Type: Application
    Filed: June 7, 2018
    Publication date: October 11, 2018
    Applicant: Micron Technology, Inc.
    Inventors: Dimitrios Pavlopoulos, Kunal Shrotri, Anish A. Khandekar
  • Patent number: 10014311
    Abstract: A method of forming poly silicon comprises forming a first polysilicon-comprising material over a substrate, with the first polysilicon-comprising material comprising at least one of elemental carbon and elemental nitrogen at a total of 0.1 to 20 atomic percent. A second polysilicon-comprising material is formed over the first poly silicon-comprising material. The second polysilicon-comprising material comprises less, if any, total elemental carbon and elemental nitrogen than the first polysilicon-comprising material. Other aspects and embodiments, including structure independent of method of manufacture, are disclosed.
    Type: Grant
    Filed: October 17, 2016
    Date of Patent: July 3, 2018
    Assignee: Micron Technology, Inc.
    Inventors: Dimitrios Pavlopoulos, Kunal Shrotri, Anish A. Khandekar
  • Publication number: 20180114795
    Abstract: A method comprises forming material to be etched over a substrate. An etch mask comprising a silicon nitride-comprising region is formed elevationally over the material. The etch mask comprises an elevationally-extending mask opening in the silicon nitride-comprising region that has a minimum horizontal open dimension that is greater in an elevationally-innermost portion of the region than in an elevationally-outermost portion of the region. The elevationally-outermost portion has a greater etch rate in at least one of HF and H3PO4 than does the elevationally-innermost portion. The etch mask is used as a mask while etching an elevationally-extending mask opening into the material. The silicon nitride-comprising region is exposed to at least one of HF and H3PO4 to increase the minimum horizontal open dimension in the elevationally-outermost portion to a greater degree than increase, if any, in the minimum horizontal open dimension in the elevationally-innermost portion.
    Type: Application
    Filed: December 21, 2017
    Publication date: April 26, 2018
    Inventors: Fei Wang, Tom J. John, Kunal Shrotri, Anish A. Khandekar, Aaron R. Wilson, John D. Hopkins, Derek F. Lundberg
  • Publication number: 20180108670
    Abstract: A method of forming poly silicon comprises forming a first polysilicon-comprising material over a substrate, with the first polysilicon-comprising material comprising at least one of elemental carbon and elemental nitrogen at a total of 0.1 to 20 atomic percent. A second polysilicon-comprising material is formed over the first poly silicon-comprising material. The second polysilicon-comprising material comprises less, if any, total elemental carbon and elemental nitrogen than the first polysilicon-comprising material. Other aspects and embodiments, including structure independent of method of manufacture, are disclosed.
    Type: Application
    Filed: October 17, 2016
    Publication date: April 19, 2018
    Inventors: Dimitrios Pavlopoulos, Kunal Shrotri, Anish A. Khandekar
  • Patent number: 9893083
    Abstract: A method comprises forming material to be etched over a substrate. An etch mask comprising a silicon nitride-comprising region is formed elevationally over the material. The etch mask comprises an elevationally-extending mask opening in the silicon nitride-comprising region that has a minimum horizontal open dimension that is greater in an elevationally-innermost portion of the region than in an elevationally-outermost portion of the region. The elevationally-outermost portion has a greater etch rate in at least one of HF and H3PO4 than does the elevationally-innermost portion. The etch mask is used as a mask while etching an elevationally-extending mask opening into the material. The silicon nitride-comprising region is exposed to at least one of HF and H3PO4 to increase the minimum horizontal open dimension in the elevationally-outermost portion to a greater degree than increase, if any, in the minimum horizontal open dimension in the elevationally-innermost portion.
    Type: Grant
    Filed: October 13, 2016
    Date of Patent: February 13, 2018
    Assignee: Micron Technology, Inc.
    Inventors: Fei Wang, Tom J. John, Kunal Shrotri, Anish A. Khandekar, Aaron R. Wilson, John D. Hopkins, Derek F. Lundberg
  • Patent number: 9847340
    Abstract: 3D NAND memory structures and related method are provided. In some embodiments such structures can include a control gate material and a floating gate material disposed between a first insulating layer and a second insulating layer, an interpoly dielectric (IPD) layer disposed between the floating gate material and control gate material such that the IPD layer electrically isolates the control gate material from the floating gate material, and a tunnel dielectric material deposited on the floating gate material opposite the control gate material.
    Type: Grant
    Filed: March 27, 2014
    Date of Patent: December 19, 2017
    Assignee: Intel Corporation
    Inventors: Darwin Fan, Sateesh Koka, Gordon Haller, John Hopkins, Shyam Surthi, Anish Khandekar
  • Publication number: 20170229470
    Abstract: Some embodiments include a method of forming vertically-stacked memory cells. An opening is formed through a stack of alternating insulative and conductive levels. Cavities are formed to extend into the conductive levels along sidewalls of the opening. At least one of the cavities is formed to be shallower than one or more others of the cavities. Charge-blocking dielectric and charge-storage structures are formed within the cavities. Some embodiments include an integrated structure having a stack of alternating insulative and conductive levels. Cavities extend into the conductive levels. At least one of the cavities is shallower than one or more others of the cavities by at least about 2 nanometers. Charge-blocking dielectric is within the cavities. Charge-storage structures are within the cavities.
    Type: Application
    Filed: April 25, 2017
    Publication date: August 10, 2017
    Inventors: Hongbin Zhu, Gordon A. Haller, Charles H. Dennison, Anish A. Khandekar, Brett D. Lowe, Lining He, Brian Cleereman
  • Patent number: 9659949
    Abstract: Some embodiments include a method of forming vertically-stacked memory cells. An opening is formed through a stack of alternating insulative and conductive levels. Cavities are formed to extend into the conductive levels along sidewalls of the opening. At least one of the cavities is formed to be shallower than one or more others of the cavities. Charge-blocking dielectric and charge-storage structures are formed within the cavities. Some embodiments include an integrated structure having a stack of alternating insulative and conductive levels. Cavities extend into the conductive levels. At least one of the cavities is shallower than one or more others of the cavities by at least about 2 nanometers. Charge-blocking dielectric is within the cavities. Charge-storage structures are within the cavities.
    Type: Grant
    Filed: March 23, 2015
    Date of Patent: May 23, 2017
    Assignee: Micron Technology, Inc.
    Inventors: Hongbin Zhu, Gordon A. Haller, Charles H. Dennison, Anish A. Khandekar, Brett D. Lowe, Lining He, Brian Cleereman
  • Publication number: 20160284719
    Abstract: Some embodiments include a method of forming vertically-stacked memory cells. An opening is formed through a stack of alternating insulative and conductive levels. Cavities are formed to extend into the conductive levels along sidewalls of the opening. At least one of the cavities is formed to be shallower than one or more others of the cavities. Charge-blocking dielectric and charge-storage structures are formed within the cavities. Some embodiments include an integrated structure having a stack of alternating insulative and conductive levels. Cavities extend into the conductive levels. At least one of the cavities is shallower than one or more others of the cavities by at least about 2 nanometers. Charge-blocking dielectric is within the cavities. Charge-storage structures are within the cavities.
    Type: Application
    Filed: March 23, 2015
    Publication date: September 29, 2016
    Inventors: Hongbin Zhu, Gordon A. Haller, Charles H. Dennison, Anish A. Khandekar, Brett D. Lowe, Lining He, Brian Cleereman
  • Publication number: 20150279851
    Abstract: 3D NAND memory structures and related method are provided. In some embodiments such structures can include a control gate material and a floating gate material disposed between a first insulating layer and a second insulating layer, an interpoly dielectric (IPD) layer disposed between the floating gate material and control gate material such that the IPD layer electrically isolates the control gate material from the floating gate material, and a tunnel dielectric material deposited on the floating gate material opposite the control gate material.
    Type: Application
    Filed: March 27, 2014
    Publication date: October 1, 2015
    Inventors: Darwin Fan, Sateesh Koka, Gordon Haller, John Hopkins, Shyam Surthi, Anish Khandekar
  • Patent number: 9087737
    Abstract: Methods are disclosed that include selectively etching diffused regions to form recesses in semiconductor material, and forming charge storage structures in the recesses. Additional embodiments are disclosed.
    Type: Grant
    Filed: August 11, 2014
    Date of Patent: July 21, 2015
    Assignee: Micron Technology, Inc.
    Inventors: Alex Schrinsky, Anish Khandekar, Pavan Aella, Niraj B. Rana
  • Publication number: 20140349454
    Abstract: Methods are disclosed that include selectively etching diffused regions to form recesses in semiconductor material, and forming charge storage structures in the recesses. Additional embodiments are disclosed.
    Type: Application
    Filed: August 11, 2014
    Publication date: November 27, 2014
    Inventors: Alex Schrinsky, Anish Khandekar, Pavan Aella, Niraj B. Rana
  • Patent number: 8802525
    Abstract: Methods are disclosed that include selectively etching diffused regions to form recesses in semiconductor material, and forming charge storage structures in the recesses. Additional embodiments are disclosed.
    Type: Grant
    Filed: August 8, 2011
    Date of Patent: August 12, 2014
    Assignee: Micron Technology, Inc.
    Inventors: Alex Schrinsky, Anish Khandekar, Pavan Aella, Niraj B. Rana
  • Patent number: 8709929
    Abstract: Semiconductor devices and methods for forming semiconductor devices are provided, including semiconductor devices that comprise one or more diffusion regions in a semiconductor, the one or more diffusion regions being adjacent to a gate formed adjacent to a surface of the semiconductor (e.g., a semiconductor substrate). The one or more diffusion regions comprise a first width at a depth below the surface of the semiconductor and a second width near the surface of the semiconductor, the second width of the one or more diffusion regions being less than about 40% greater than the first width.
    Type: Grant
    Filed: September 5, 2012
    Date of Patent: April 29, 2014
    Assignee: Micron Technology, Inc.
    Inventors: Lequn Liu, Yongjun Jeff Hu, Anish A. Khandekar
  • Publication number: 20130040429
    Abstract: Methods are disclosed that include selectively etching diffused regions to form recesses in semiconductor material, and forming charge storage structures in the recesses. Additional embodiments are disclosed.
    Type: Application
    Filed: August 8, 2011
    Publication date: February 14, 2013
    Applicant: Micron Technology, Inc.
    Inventors: Alex Schrinsky, Anish Khandekar, Pavan Aella, Niraj B. Rana
  • Publication number: 20120329258
    Abstract: Semiconductor devices and methods for forming semiconductor devices are provided, including semiconductor devices that comprise one or more diffusion region in a semiconductor, the one or more diffusion regions being adjacent to a gate formed adjacent to a surface of the semiconductor (e.g., a semiconductor substrate). The one or more diffusion regions comprise a first width at a depth below the surface of the semiconductor and a second width near the surface of the semiconductor, the second width of the one or more diffusion regions being less than about 40% greater than the first width.
    Type: Application
    Filed: September 5, 2012
    Publication date: December 27, 2012
    Applicant: MICRON TECHNOLOGY, INC.
    Inventors: Lequn Liu, Yongjun Jeff Hu, Anish A. Khandekar