Patents by Inventor James J. Murphy

James J. Murphy 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: 7956411
    Abstract: A field effect transistor (FET) includes a trench extending into a semiconductor region. A conductive electrode is disposed in the trench, and the conductive electrode is insulated from the semiconductor region by a dielectric layer. The conductive electrode includes a conductive liner lining the dielectric layer along opposite sidewalls of the trench. The conductive liner has tapered edges such that a thickness of the conductive liner gradually increases from a top surface of the conductive electrode to a point in lower half of the conductive electrode. The conductive electrode further includes a conductive fill material sandwiched by the conductive liner. The FET further includes a drift region of a first conductivity type in the semiconductor region, and a body region of a second conductivity type extending over the drift region. Source regions of the first conductivity type extend in the body region adjacent the trench.
    Type: Grant
    Filed: January 14, 2009
    Date of Patent: June 7, 2011
    Assignee: Fairchild Semiconductor Corporation
    Inventors: James J. Murphy, Hui Chen, Eileen Valdez
  • Publication number: 20110127601
    Abstract: Semiconductor devices and methods for making such devices that are especially suited for high-frequency applications are described. The semiconductor devices combine a SIT (or a junction field-effect transistor [JFET]) architecture with a PN super-junction structure. The SIT architecture can be made using a trench formation containing a gate that is sandwiched between thick dielectric layers. While the gate is vertically sandwiched between the two isolating regions in the trench, it is also connected to a region of one conductivity type of the super-junction structure, thereby allowing control of the current path of the semiconductor device. Such semiconductor devices have a lower specific resistance and capacitance relative to conventional planar gate and recessed gate SIT semiconductor devices. Other embodiments are described.
    Type: Application
    Filed: December 2, 2009
    Publication date: June 2, 2011
    Inventors: Suku Kim, James J. Murphy, Gary Dolny
  • Patent number: 7951688
    Abstract: A method for obtaining individual dies from a semiconductor structure is disclosed. The semiconductor structure includes a device layer, and the device layer in turn includes active regions separated by predefined spacings. Thick metal is selectively formed on backside of the device layer such that thick metal is formed on backside of active regions but not on backside of the predefined spacings. The semiconductor structure is then cut along the predefined spacings to separate the active regions with thick metal on their backside into individual dies.
    Type: Grant
    Filed: July 17, 2008
    Date of Patent: May 31, 2011
    Assignee: Fairchild Semiconductor Corporation
    Inventors: Minhua Li, Qi Wang, Gordon Sim, Matthew Reynolds, Suku Kim, James J. Murphy, Hamza Yilmaz
  • Patent number: 7936009
    Abstract: A shielded gate trench field effect transistor (FET) comprises trenches extending into a semiconductor region. A shield electrode is disposed in a bottom portion of each trench. The shield electrode is insulated from the semiconductor region by a shield dielectric. A gate electrode is disposed in each trench over the shield electrode, and an inter-electrode dielectric (IED) comprising a low-k dielectric extends between the shield electrode and the gate electrode.
    Type: Grant
    Filed: July 9, 2008
    Date of Patent: May 3, 2011
    Assignee: Fairchild Semiconductor Corporation
    Inventors: James Pan, James J. Murphy
  • Publication number: 20110031596
    Abstract: Semiconductor devices containing nickel-titanium (NiTi or TiNi) compounds or alloys and methods for making such devices are described. The devices contain a silicon substrate with an integrated circuit, a contact layer contacting the substrate, a TiNi-containing soldering layer on the contact layer, an oxidation prevention layer on the soldering layer, a solder bump on the soldering layer, and a lead frame or PCB attached to the solder bump. The combination of the Ti and Ni materials in the soldering layer exhibits many features not found in the Ti and Ni materials alone, such as reduced wafer warpage, increased ductility for improved elasticity, decreased consumption of the Ni in the soldering layer, and decreased manufacturing costs. Other embodiments are described.
    Type: Application
    Filed: August 5, 2009
    Publication date: February 10, 2011
    Inventors: Mike D. Gruenhagen, James J. Murphy, Suku Kim, Jim Pierce, William S. Beggs, Thomas P. Welch
  • Publication number: 20110006409
    Abstract: Semiconductor devices containing nickel-titanium (NiTi or TiNi) compounds (or alloys) and methods for making such devices are described. The devices contain a silicon substrate with an integrated circuit having a drain on the backside of the substrate, a TiNi contact layer contacting the drain on the backside of the substrate, a soldering layer on the contact layer, an oxidation reducing layer on the soldering layer, a solder bump on the soldering layer, and a lead frame attached to the solder bump. The combination of the Ti and Ni materials in the contact layer exhibits many features not found in the Ti and Ni materials alone, such as reduced backside on-resistance, ability to form a silicide with the Si substrate at lower temperatures, reduced wafer warpage, increased ductility for improved elasticity, and good adhesion properties. Other embodiments are described.
    Type: Application
    Filed: July 13, 2009
    Publication date: January 13, 2011
    Inventors: Michael D. Gruenhagen, James J. Murphy, Suku Kim, Jim Pierce, William S. Beggs, Robert J. Purtell
  • Publication number: 20100267200
    Abstract: A semiconductor die package is disclosed. The semiconductor die package comprises a metal substrate, and a semiconductor die comprising a first surface comprising a first electrical terminal, a second surface including a second electrical terminal, and at least one aperture. The metal substrate is attached to the second surface. A plurality of conductive structures is on the semiconductor die, and includes at least one conductive structure disposed in the at least one aperture. Other conductive structures may be disposed on the first surface of the semiconductor die.
    Type: Application
    Filed: June 25, 2010
    Publication date: October 21, 2010
    Inventors: Hamza Yilmaz, Steven Sapp, Qi Wang, Minhua Li, James J. Murphy, John Robert Diroll
  • Publication number: 20100244126
    Abstract: A method for forming a trench-gate FET includes the following steps. A plurality of trenches is formed extending into a semiconductor region. A gate dielectric is formed extending along opposing sidewalls of each trench and over mesa surfaces of the semiconductor region between adjacent trenches. A gate electrode is formed in each trench isolated from the semiconductor region by the gate dielectric. Well regions of a second conductivity type are formed in the semiconductor region. Source regions of the first conductivity type are formed in upper portions of the well regions. After forming the source regions, a salicide layer is formed over the gate electrode in each trench abutting portions of the gate dielectric. The gate dielectric prevents formation of the salicide layer over the mesa surfaces of the semiconductor region between adjacent trenches.
    Type: Application
    Filed: March 27, 2009
    Publication date: September 30, 2010
    Inventors: Robert J. Purtell, James J. Murphy
  • Patent number: 7768075
    Abstract: A semiconductor die package is disclosed. The semiconductor die package comprises a metal substrate, and a semiconductor die comprising a first surface comprising a first electrical terminal, a second surface including a second electrical terminal, and at least one aperture. The metal substrate is attached to the second surface. A plurality of conductive structures is on the semiconductor die, and includes at least one conductive structure disposed in the at least one aperture. Other conductive structures may be disposed on the first surface of the semiconductor die.
    Type: Grant
    Filed: April 6, 2006
    Date of Patent: August 3, 2010
    Assignee: Fairchild Semiconductor Corporation
    Inventors: Hamza Yilmaz, Steven Sapp, Qi Wang, Minhua Li, James J. Murphy, John Robert Diroll
  • Publication number: 20100148325
    Abstract: Disclosed are semiconductor dice with backside trenches filled with elastic conductive material. The trenches reduce the on-state resistances of the devices incorporated on the dice. The elastic conductive material provides a conductive path to the backsides of the die with little induced stress on the semiconductor die caused by thermal cycling. Also disclosed are packages using the dice, and methods of making the dice.
    Type: Application
    Filed: December 12, 2008
    Publication date: June 17, 2010
    Inventors: Michael D. Gruenhagen, Suku Kim, James J. Murphy, Eddy Tjhia, Chung-Lin Wu, Mark Larsen, Douglas E. Dolan
  • Publication number: 20100123225
    Abstract: Disclosed are semiconductor die structures that enable a die having a vertical power device to be packaged in a wafer-level chip scale package where the current-conducting terminals are present at one surface of the die, and where the device has very low on-state resistance. In an exemplary embodiment, a trench and an aperture are formed in a backside of a die, with the aperture contacting a conductive region at the top surface of the die. A conductive layer and/or a conductive body may be disposed on the trench and aperture to electrically couple the backside current-conducting electrode of the device to the conductive region. Also disclosed are packages and systems using a die with a die structure according to the invention, and methods of making dice with a die structure according to the invention.
    Type: Application
    Filed: November 20, 2008
    Publication date: May 20, 2010
    Inventors: Michael D. Gruenhagen, Suku Kim, James J. Murphy, Ihsiu Ho, Eddy Tjhia, Chung-Lin Wu, Mark Larsen, Rohit Dikshit
  • Publication number: 20100044785
    Abstract: A field effect transistor (FET) includes a trench extending into a semiconductor region. A conductive electrode is disposed in the trench, and the conductive electrode is insulated from the semiconductor region by a dielectric layer. The conductive electrode includes a conductive liner lining the dielectric layer along opposite sidewalls of the trench. The conductive liner has tapered edges such that a thickness of the conductive liner gradually increases from a top surface of the conductive electrode to a point in lower half of the conductive electrode. The conductive electrode further includes a conductive fill material sandwiched by the conductive liner. The FET further includes a drift region of a first conductivity type in the semiconductor region, and a body region of a second conductivity type extending over the drift region. Source regions of the first conductivity type extend in the body region adjacent the trench.
    Type: Application
    Filed: January 14, 2009
    Publication date: February 25, 2010
    Inventors: JAMES J. MURPHY, Hui Chen, Eileen Valdez
  • Publication number: 20100006928
    Abstract: A shielded gate trench field effect transistor (FET) comprises trenches extending into a semiconductor region. A shield electrode is disposed in a bottom portion of each trench. The shield electrode is insulated from the semiconductor region by a shield dielectric. A gate electrode is disposed in each trench over the shield electrode, and an inter-electrode dielectric (IED) comprising a low-k dielectric extends between the shield electrode and the gate electrode.
    Type: Application
    Filed: July 9, 2008
    Publication date: January 14, 2010
    Inventors: James Pan, James J. Murphy
  • Publication number: 20090273082
    Abstract: Methods for localized thinning of wafers used in semiconductor devices and the structures formed from such methods are described. The methods thin localized areas of the backside of the semiconductor wafer to form recesses with a bi-directional channel design that is repeated within the wafer (or die) so that no straight channel line crosses the wafer (or die). The bi-directional pattern design keeps the channels from being aligned with the crystal orientation of the wafer. The recesses are then filled by a solder ball drop process by dropping proper size solder balls into the recesses and then annealing the wafer to reflow the solder balls and flatten them out. The reflow process begins to fill in the recesses from the bottom up, thereby avoiding void formation and the resulting air traps in the reflowed solder material. Other embodiments are also described.
    Type: Application
    Filed: May 5, 2008
    Publication date: November 5, 2009
    Inventors: Suku Kim, James J. Murphy, Michael D. Gruenhagen, Matthew R. Reynolds, Romel N. Manatad, Jan Vincent Mancelita
  • Publication number: 20090181520
    Abstract: A method for obtaining individual dies from a semiconductor structure is disclosed. The semiconductor structure includes a device layer, and the device layer in turn includes active regions separated by predefined spacings. Thick metal is selectively formed on backside of the device layer such that thick metal is formed on backside of active regions but not on backside of the predefined spacings. The semiconductor structure is then cut along the predefined spacings to separate the active regions with thick metal on their backside into individual dies.
    Type: Application
    Filed: July 17, 2008
    Publication date: July 16, 2009
    Inventors: Minhua Li, Qi Wang, Gordon Sim, Matthew Reynolds, Suku Kim, James J. Murphy, Hamza Yilmaz
  • Publication number: 20080150020
    Abstract: A semiconductor power device includes a drift region of a first conductivity type, a well region extending above the drift region and having a second conductivity type opposite the first conductivity type, an active trench extending through the well region and into the drift region. The active trench, which includes sidewalls and bottom lined with dielectric material, is substantially filled with a first conductive layer and a second conductive layer. The second conductive layer forms a gate electrode and is disposed above the first conductive layer and is separated from the first conductive layer by an inter-electrode dielectric material. The device also includes source regions having the first conductivity type formed inside the well region and adjacent the active trench and a charge control trench that extends deeper into the drift region than the active trench and is substantially filled with material to allow for vertical charge control in the drift region.
    Type: Application
    Filed: January 22, 2008
    Publication date: June 26, 2008
    Inventors: Ashok Challa, Alan Elbanhawy, Thomas E. Grebs, Nathan L. Kraft, Dean E. Probst, Rodney S. Ridley, Steven P. Sapp, Qi Wang, Chongman Yun, J. G. Lee, Peter H. Wilson, Joseph A. Yedinak, J. Y. Jung, H. C. Jang, Babak S. Sani, Richard Stokes, Gary M. Dolny, John Mytych, Becky Losee, Adam Selsley, Robert Herrick, James J. Murphy, Gordon K. Madson, Bruce D. Marchant, Christopher L. Rexer, Christopher B. Kocon, Debra S. Woolsey
  • Publication number: 20080138953
    Abstract: A method for forming thick oxide at the bottom of a trench formed in a semiconductor substrate includes forming a conformal oxide film that fills the trench and covers a top surface of the substrate. and etching the oxide film off the top surface of the substrate and inside the trench to leave a substantially flat layer of oxide having a target thickness at the bottom of the trench. The oxide film can be deposited by sub-atmospheric chemical vapor deposition processes, directional Tetraethoxysilate (TEOS) processes, or high density plasma deposition processes that form a thicker oxide at the bottom of the trench than on the sidewalls of the trench.
    Type: Application
    Filed: February 15, 2008
    Publication date: June 12, 2008
    Inventors: Ashok Challa, Alan Elbanhawy, Dean E. Probst, Steven P. Sapp, Peter H. Wilson, Babak S. Sani, Becky Losee, Robert Herrick, James J. Murphy, Gordon K. Madson, Bruce D. Marchant, Christopher B. Kocon, Debra S. Woolsey
  • Publication number: 20080135931
    Abstract: A semiconductor power device includes a drift region of a first conductivity type, a well region extending above the drift region and having a second conductivity type opposite the first conductivity type, an active trench extending through the well region and into the drift region, source regions having the first conductivity type formed in the well region adjacent the active trench, and a first termination trench extending below the well region and disposed at an outer edge of an active region of the device. The sidewalls and bottom of the active trench are lined with dielectric material, and substantially filled with a first conductive layer forming an upper electrode and a second conductive layer forming a lower electrode, the upper electrode being disposed above the lower electrode and separated therefrom by inter-electrode dielectric material.
    Type: Application
    Filed: February 15, 2008
    Publication date: June 12, 2008
    Inventors: Ashok Challa, Alan Elbanhawy, Thomas E. Grebs, Nathan L. Kraft, Dean E. Probst, Rodney S. Ridlay, Steven P. Sapp, Qi Wang, Chongman Yun, J.G. Lee, Peter H. Wilson, Joseph A. Yedinak, J.Y. Jung, H.C. Jang, Babak S. Sanl, Richard Stokes, Gary M. Dolny, John Mytych, Becky Losee, Adam Selsley, Robert Herrick, James J. Murphy, Gordon K. Madson, Bruce D. Marchant, Christopher L. Rexer, Christopher B. Kocon, Debra S. Woolsey
  • Patent number: 6861296
    Abstract: A gate isolation structure of a semiconductor device and method of making the same provides a trench in a silicon substrate, wherein a dielectric layer is formed on sidewalls and bottom of the trench, the dielectric layer having a first thickness on the sidewalls and a second thickness at the bottom that is greater than the first thickness. The thicker dielectric layer at the bottom substantially reduces gate charge to reduce the Miller Capacitance effect, thereby increasing the efficiency of the semiconductor device and prolonging its life.
    Type: Grant
    Filed: June 19, 2002
    Date of Patent: March 1, 2005
    Assignee: Fairchild Semiconductor Corporation
    Inventors: Henry W. Hurst, James J. Murphy
  • Publication number: 20040237541
    Abstract: The present invention relates to a non-mechanical blower for use in heating the interior of a motor vehicle, and more particularly, to the use of thermoelectric devices used in tandem to replace conventional electromechanical blower devices.
    Type: Application
    Filed: March 22, 2004
    Publication date: December 2, 2004
    Inventor: James J. Murphy