Nova Patents
EP1506579A2

Schottky barrier cmos device and method

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 16 May 2023, 3.4 years ago.

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26 claims: 8 independent, 18 dependent

  1. 1
    Claims of equivalent WO 03098693 A2 CLAIMS We claim:1. A CMOS device on a semiconductor substrate, comprising: at least one Schottky barrier NMOS device having P-type channel dopants;at least one Schottky barrier PMOS device having N-type channel dopants;and at least one of the P-type and N-type channel dopants being not electrically contacted via ohmic contacts.
  2. 2
    A CMOS device on a semiconductor substrate, comprising:at least one Schottky barrier NMOS device, the Schottky barrier NMOS device located within at least one of a Schottky barrier NMOS active region;at least one Schottky barrier PMOS device, the Schottky barrier PMOS device located within at least one of a Schottky barrier PMOS active region;at least one well implant in at least one of the Schottky barrier NMOS active region and the Schottky barrier PMOS active region being not electrically contacted via ohmic contacts.
  3. 3
    A CMOS device on a semiconductor substrate, comprising:at least one Schottky barrier NMOS device;at least one Schottky barrier PMOS device;and means for electrically isolating devices, the means being not recessed into the semiconductor substrate.
  4. 4
    A CMOS device on a semiconductor substrate, comprising:at least one Schottky barrier NMOS active region having at least one Schottky barrier NMOS device;at least one Schottky barrier PMOS active region having at least one Schottky barrier PMOS device;and at least one field region providing isolation for Schottky barrier NMOS active region and Schottky barrier PMOS active region, the field region comprising an electrical insulator layer being not recessed into the semiconductor substrate.
  5. 5
    A method for fabricating a CMOS device on a semiconductor substrate, comprising the steps of:providing for at least one Schottky barrier NMOS active region;providing for at least one Schottky barrier PMOS active region;forming a first type of metal in at least some areas of at least one Schottky barrier NMOS active region while preventing formation of the first type of metal in other areas of the semiconductor substrate;and forming a second type of metal in at least some areas of at least one Schottky barrier PMOS active region while preventing formation of the second type of metal in other areas of the semiconductor substrate.
  6. 6
    A method for fabricating a CMOS device on a semiconductor substrate using a dual exclusion mask process, comprising the steps of:providing at least one Schottky barrier NMOS active region comprising at least one gate electrode and an area of exposed semiconductor substrate;providing at least one Schottky barrier PMOS active region comprising at least one gate electrode and an area of exposed semiconductor substrate;providing a first exclusion mask layer for preventing formation of a first type of metal in the area of exposed semiconductor substrate in the Schottky barrier PMOS active region while exposing and thereby allowing formation of the first type of metal in the area of the exposed semiconductor substrate of the Schottky barrier NMOS active region. providing a second exclusion mask layer for preventing formation of a second type of metal in the area of exposed semiconductor substrate in the Schottky barrier NMOS active region while exposing and thereby allowing formation of the second type of metal in the area of the exposed semiconductor substrate of the Schottky barrier PMOS active region.
  7. 8
    A method for fabricating a CMOS device on a semiconductor substrate using a dual exclusion mask process, the method comprising the steps:providing at least one gate electrode in at least one Schottky barrier N-type active region of the semiconductor substrate, the gate electrode having an electrically insulating sidewall spacer;providing at least one gate electrode in at least one Schottky barrier P-type active region of the semiconductor substrate, the gate electrodes having an electrically insulating sidewall spacer;providing a first exclusion mask layer for the Schottky barrier P- type active region, the exclusion mask layer patterned using an etch having an exclusion mask layer etch rate greater than a sidewall spacer etch rate, thereby exposing at least some of the semiconductor substrate in the Schottky barrier N- type active region;providing a Schottky or Schottky-like contact in exposed semiconductor substrate of the Schottky barrier N-type active region by providing a thin metal layer to react with the exposed semiconductor substrate, the exposed sidewall spacer providing a continuous barrier to a chemical reaction between the gate electrode and the thin metal layer;providing a second exclusion mask layer for the Schottky barrier N-type active region, the exclusion mask layer patterned using an etch having an exclusion mask layer etch rate greater than a sidewall spacer etch rate, thereby exposing the semiconductor substrate in at least some of the Schottky barrier P- type active region;and providing a Schottky or Schottky-like contact in the exposed semiconductor substrate of the Schottky barrier P-type active region by providing a Schottky contact material to react with the exposed semiconductor substrate, the exposed sidewall spacer providing a continuous barrier to a chemical reaction between the gate electrode and the Schottky contact material.
  8. 26
    A CMOS device having Schottky barrier source and drain electrodes, comprising:at least one Schottky barrier NMOS device;at least one Schottky barrier PMOS device, the NMOS and PMOS devices electrically connected.