EP0054259A2

Method of manufacturing a semiconductor device of the MIS type.

Abstract

A method for manufacturing a semiconductor device of the invention comprises the steps of (a) forming a gate insulating film (3, 23, 33, 43, 53, 63) on a surface of a silicon substrate (1,21,31,41,51,61), and a gate electrode (4, 24, 34, 44, 54, 64) on said gate insulating film (3, 23, 33, 43, 53, 63);(b) forming a self-aligned insulating film (6, 26a, 38, 46, 55, 65) at least on a side wall of said gate electrode (4, 24,34, 44, 54, 64);(c) forming a self-aligned metal or metal silicide film (9, 29,39,49, 57a, 57b, 57c, 67a, 67b, 67c) on a region on which an insulating film is not formed, said region including a source region (5a, 25a, 35a, 48a, 58a, 68a), a drain region (5b, 25b, 35b, 48b, 58b, 68b) and a diffusion interconnection region (5c, 25c, 35c, 48c) which is an extended part of at least one of said source region and said drain region, or prospective regions for said source, drain and diffusion interconnection regions; and(d) forming said source region, said drain region and said diffusion interconnection region which is the extended part of at least one of said source region and said drain region, by doping at least one time said substrate with an impurity which has a conductivity type opposite to a conductivity type of said silicon substrate any time after step (a).

EP0054259A2, drawing sheet 1
Sheet 1 of 7

Term

Term ended

Projected expiry passed 9 December 2001, 24.8 years ago.

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15 claims: 2 independent, 13 dependent

  1. 1
    A method for manufacturing a semiconductor device comprising the steps of (a) forming a gate insulating film (3, 23, 33, 43, 53, 63) on a surface of a silicon substrate (1, 2l, 31, 41, 51, 61), and a gate electrode (4, 24, 34, 44, 54, 64) on said gate insulating film (3, 23, 33, 43, 53, 63);(b) forming a self-aligned insulating film (6, 26a, 38, 46, 55, 65) at least on a side wall of said gate electrode (4, 24, 34, 44, 54, 64);(c) forming a self-aligned metal or metal silicide film (9, 29, 39, 49, 57a, 57b, 57c, 67a, 67b, 67c) on a region on which an insulating film is not formed, said region including a source region (5a, 25a, 35a, 48a, 58a, 68a), a drain region (5b, 25b, 35b, 48b, 58b, 68b) and a diffusion interconnection region (5c, 25c, 35c, 48c) which is an extended part of at least one of said source region and said drain region, or prospective regions for said source, drain and diffusion interconnection regions;and (d) forming said source region, said drain region and said diffusion interconnection region which is the extended part of at least one of said source region and said drain region, by doping at least one time said substrate with an impurity which has a conductivity type opposite to a conductivity type of said silicon substrate any time after step (a).
  2. 6
    A method according to any one of claims 1 to 5, wherein step (d) is performed between steps (a) and (b), and annealing is performed after step (d).
  3. 7
    A method according to any one of claims 1 to 5, step (d) is performed between steps (a) and (b) and between steps (b) and (c), and annealing is performed at least one time after step (d).
  4. 8
    A method according to claim.1, wherein said gate electrode (24) is a polycrystalline silicon layer (24) in which an impurity of high concentration is doped, and step (b) includes oxidation in a wet or steam atmosphere, etching, and leaving an oxide film (26a) only on the surface of said gate electrode (24).