EP1548831A1

Semiconductor storage device and its manufacturing method

Abstract

A drain (7) comprises a lightly-doped shallow impurity region (7a) aligned with a control gate (5), and a heavily-doped deep impurity region (7b) aligned with a sidewall film (8) and doped with impurities at a concentration higher than that of the lightly-doped shallow impurity region (7a). The lightly-doped shallow impurity region (7a) leads to improvement of the short-channel effect and programming efficiency. A drain contact hole forming portion (70) is provided to the heavily-doped impurity region (7b) to reduce the contact resistance at the drain (7).

EP1548831A1, drawing sheet 1
Sheet 1 of 13

Term

Term ended

Projected expiry passed 29 August 2023, 3.1 years ago.

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22 claims: 4 independent, 18 dependent

  1. 1
    A semiconductor memory device comprising:a semiconductor substrate;a gate insulating film formed on said semiconductor substrate;a gage electrode formed by patterning on said gate insulating film;a pair of diffusion layers formed at both sides of said gate electrode and in a surface layer of said semiconductor substrate;and a pair of sidewall films formed on side surfaces of said gate electrode,    wherein one diffusion layer of said pair of diffusion layers is formed to be aligned with said gate electrode, and    wherein other diffusion layer of said pair of diffusion layers includes a lightly-doped impurity region formed to be aligned with said gate electrode and doped with impurities at a concentration lower than the concentration of said one diffusion layer, and a heavily-doped impurity region formed to be aligned with said sidewall film and doped with impurities at a concentration higher than the concentration of said lightly-doped impurity region.
  2. 5
    A semiconductor memory device comprising:a semiconductor substrate;a first gate insulating film formed on said semiconductor substrate;a floating gate formed by patterning on said first gate insulating film to have an island structure and storing electric charges;a second gate insulating film formed on said floating gate;a control gate formed by patterning on said second gate insulating film;a pair of diffusion layers formed at both sides of said control gate and in a surface layer of said semiconductor substrate;and a pair of sidewall films formed on side surfaces of said control gate,    wherein one diffusion layer of said pair of diffusion layers is formed to be aligned with said control gate, and    wherein other diffusion layer of said pair of diffusion layers includes a lightly-doped impurity region formed to be aligned with said control gate and doped with impurities at a concentration lower than the concentration of said one diffusion layer, and a heavily-doped impurity region formed to be aligned with said sidewall film and doped with impurities at a concentration higher than the concentration of said lightly-doped impurity region.
  3. 9
    A manufacturing method of a semiconductor memory device comprising the steps of:forming a gate electrode by patterning on a semiconductor substrate via a gate insulating film;forming one diffusion layer by doping impurities into such a surface layer of the semiconductor substrate that is at one side of the gate electrode;forming a lightly-doped impurity region by doping impurities into such a surface layer of the semiconductor substrate that is at other side of the gate electrode at a concentration lower than the concentration of the other side of the gate electrode;forming a pair of sidewall films on side surfaces of the gate electrode;and forming a heavily-doped impurity region partially overlapping the lightly-doped impurity region by doping a high concentration of impurities into such a surface layer of the semiconductor substrate that is at the other side of the sidewall film as well as the gate electrode to thereby form other diffusion layer composed of the lightly-doped impurity region and the heavily-doped impurity region.
  4. 16
    A manufacturing method of a semiconductor memory device comprising the steps of:forming a floating gate having an island structure and storing electric charges by patterning on a semiconductor substrate via a first gate insulating film;forming a control gate by patterning on the floating gate via a second gate insulating film;forming one diffusion layer by doping impurities into such a surface layer of the semiconductor substrate that is at one side of the control gate;forming a lightly-doped impurity region by doping impurities into such a surface layer of the semiconductor substrate that is at other side of the control gate at a concentration lower than the concentration of the one side of the control gate;forming a pair of sidewall films on side surfaces of the control gate;and forming a heavily-doped impurity region partially overlapping the lightly-doped impurity region by doping a high concentration of impurities into such a surface layer of the semiconductor substrate that is at the other side of the sidewall film as well as the control gate to thereby form other diffusion layer composed of the lightly-doped impurity region and the heavily-doped impurity region.