EP1564799A2

Semiconductor device and method for manufacturing the same

Abstract

A TFT formed on an insulating substrate source, drain and channel regions, a gate insulating film formed on at least the channel region and a gate electrode formed on the gate insulating film. Between the channel region and the drain region, a region having a higher resistivity is provided in order to reduce an Ioff current. A method for forming this structure comprises the steps of anodizing the gate electrode to form a porous anodic oxide film on the side of the gate electrode; removing a portion of the gate insulating using the porous anodic oxide film as a mask so that the gate insulating film extends beyond the gate electrode but does not completely cover the source and drain regions. Thereafter, an ion doping of one conductivity element is performed. The high resistivity region is defined under the gate insulating film.

EP1564799A2, drawing sheet 1
Sheet 1 of 19

Term

Term ended

Projected expiry passed 20 September 2014, 12 years ago.

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33 claims: 7 independent, 26 dependent

  1. 1
    A method for manufacturing a semiconductor device comprising the steps of:forming a semiconductor film comprising silicon over a substrate, said semiconductor film including at least a first region to become a high resistance region and a second region to become a drain region adjacent to said high resistance region;forming a gate insulating film over the semiconductor film;forming a gate electrode over the semiconductor film with the gate insulating film interposed therebetween wherein said second region of said semiconductor film is exposed from said gate insulating film;forming a metal film to cover said semiconductor film, said gate insulating film and said gate electrode wherein said metal film contacts the second region of said semiconductor film so that a metal silicide layer is formed by a reaction between said metal film and the second region of said semiconductor film;forming said high resistance region by adding an impurity to said first region for giving one conductivity type at a first concentration;forming a drain region by adding an impurity to said second region for giving said one conductivity type at a second concentration higher than said first concentration,    wherein said metal silicide layer is not formed on the first region.
  2. 5
    A method for manufacturing a semiconductor device comprising the steps of:forming a semiconductor film comprising silicon over a substrate, said semiconductor film including at least a first region to become a high resistance region and a second region to become a drain region adjacent to said high resistance region;forming a gate insulating film over the semiconductor film;forming a gate electrode over the semiconductor film with the gate insulating film interposed therebetween wherein said second region of said semiconductor film is exposed from said gate insulating film;forming a nickel film to cover said semiconductor film, said gate insulating film and said gate electrode wherein said nickel film contacts the second region of said semiconductor film so that a nickel silicide layer is formed by a reaction between said nickel film and the second region of said semiconductor film;forming said high resistance region by adding an impurity to said first region for giving one conductivity type at a first concentration;forming a drain region by adding an impurity to said second region for giving said one conductivity type at a second concentration higher than said first concentration,    wherein said nickel silicide layer is not formed on the first region.
  3. 8
    A method for manufacturing a semiconductor device comprising the steps of:forming a semiconductor film comprising silicon over a substrate, said semiconductor film including at least a first region to become a high resistance region and a second region to become a drain region adjacent to said high resistance region;forming a gate insulating film over the semiconductor film;forming a gate electrode over the semiconductor film with the gate insulating film interposed therebetween wherein said second region of said semiconductor film is exposed from said gate insulating film;forming a metal film to cover said semiconductor film, said gate insulating film and said gate electrode wherein said metal film contacts the second region of said semiconductor film;forming a metal silicide layer by irradiating said metal film and said semiconductor film with light;forming said high resistance region by adding an impurity to said first region for giving one conductivity type at a first concentration;forming a drain region by adding an impurity to said second region for giving said one conductivity type at a second concentration higher than said first concentration.
  4. 14
    A method for manufacturing a semiconductor device comprising the steps of:forming a semiconductor film comprising silicon over a substrate, said semiconductor film including at least a first region to become a high resistance region and a second region to become a drain region adjacent to said high resistance region;forming a gate insulating film over the semiconductor film;forming a gate electrode over the semiconductor film with the gate insulating film interposed therebetween wherein said second region of said semiconductor film is exposed from said gate insulating film;forming a nickel film to cover said semiconductor film, said gate insulating film and said gate electrode wherein said nickel film contacts the second region of said semiconductor film;forming a nickel silicide layer by irradiating said nickel film and said semiconductor film with light;forming said high resistance region by adding an impurity to said first region for giving one conductivity type at a first concentration;forming a drain region by adding an impurity to said second region for giving said one conductivity type at a second concentration higher than said first concentration.
  5. 21
    A method for manufacturing a semiconductor device comprising the steps of:forming a semiconductor film comprising silicon over a substrate, said semiconductor film including at least a first region to become a high resistance region and a second region to become a drain region adjacent to said high resistance region;forming a gate insulating film over the semiconductor film;forming a gate electrode over the semiconductor film with the gate insulating film interposed therebetween wherein said second region of said semiconductor film is exposed from said gate insulating film;forming a metal film to cover said semiconductor film, said gate insulating film and said gate electrode wherein said metal film contacts the second region of said semiconductor film so that a metal silicide layer is formed by a reaction between said metal film and the second region of said semiconductor film;forming said high resistance region by adding an impurity to said first region for giving one conductivity type at a first concentration;forming a drain region by adding an impurity to said second region for giving said one conductivity type at a second concentration higher than said first concentration;and removing an unreacted portion of said metal film after the formation of said metal silicide layer by etching using a solution.
  6. 26
    A method for manufacturing a semiconductor device comprising the steps of:forming a semiconductor film comprising silicon over a substrate, said semiconductor film including at least a first region to become a high resistance region and a second region to become a drain region adjacent to said high resistance region;forming a gate insulating film over the semiconductor film;forming a gate electrode over the semiconductor film with the gate insulating film interposed therebetween wherein said second region of said semiconductor film is exposed from said gate insulating film;forming a nickel film to cover said semiconductor film, said gate insulating film and said gate electrode wherein said nickel film contacts the second region of said semiconductor film so that a nickel silicide layer is formed by a reaction between said nickel film and the second region of said semiconductor film;forming said high resistance region by adding an impurity to said first region for giving one conductivity type at a first concentration;forming a drain region by adding an impurity to said second region for giving said one conductivity type at a second concentration higher than said first concentration;and removing an unreacted portion of said metal film after the formation of said metal silicide layer by etching using a solution.
  7. 30
    29. A method for manufacturing a semiconductor device comprising the steps of:forming a gate insulating film over the semiconductor film, said semiconductor film comprising silicon and including at least a first region to become a high resistance region and a second region to become a drain region adjacent to said high resistance region;forming a gate electrode over the semiconductor film with the gate insulating film interposed therebetween wherein said second region of said semiconductor film is exposed from said gate insulating film;forming a metal film to cover said semiconductor film, said gate insulating film and said gate electrode wherein said metal film contacts the second region of said semiconductor film so that a metal silicide layer is formed by a reaction between said metal film and the second region of said semiconductor film;forming said high resistance region by adding an impurity to said first region for giving one conductivity type at a first concentration;forming a drain region by adding an impurity to said second region for giving said one conductivity type at a second concentration higher than said first concentration,    wherein said metal silicide layer is not formed on the first region.