EP0975017A2

Silicon oxynitride cap for fluorinated silicate glass film in intermetal dielectric semiconductor fabrication

Abstract

A semiconductor device and method of forming a patterned conductive layer on a semiconductor substrate are provided so as to prevent fluorine substance outflow from a fluorinated silicate glass (FSG) layer thereon and simultaneously so as to suppress back reflection of light waves into a photoresist layer during photolithographic processing. The substrate is coated in turn with a conductive layer, a dielectric (e.g., silicon dioxide) liner, a FSG layer, a silicon oxynitride layer preventing fluorine substance outflow therethrough from the FSG layer and also forming an antireflective coating (ARC), and a photoresist layer. The photoresist layer is exposed and developed to uncover pattern portions of the underlying silicon oxynitride layer. The uncovered pattern portions of the silicon oxynitride ARC layer and corresponding underlying portions of the FSG layer and dielectric liner are then removed, e.g., by,a single dry etching step, to expose pattern portions of the conductive layer for metallization. Upon metallization, the substrate is provided with a combination of the FSG layer and silicon oxynitride layer, in which the silicon oxynitride layer prevents fluorine substance outflow therethrough from the underlying FSG layer to an overlying conductive layer.

EP0975017A2, drawing sheet 1
Sheet 1 of 3

Term

Term ended

Projected expiry passed 6 July 2019, 7.2 years ago.

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24 claims: 5 independent, 19 dependent

  1. 1
    A semiconductor device comprising a substrate having a combination of a fluorinated silicate glass layer and a silicon oxynitride cap layer thereon, the silicon oxynitride cap layer being disposed in overlying covering relation to the fluorinated silicate glass layer sufficiently for preventing fluorine substance outflow therethrough from the fluorinated silicate glass layer and for forming an antireflective coating.
  2. 5
    A semiconductor device comprising a substrate having:a patterned conductive layer thereon;a dielectric liner disposed on the patterned conductive layer;a combination of a fluorinated silicate glass layer and a silicon oxynitride cap layer disposed on the dielectric liner, the silicon oxynitride cap layer being disposed in overlying covering relation to the fluorinated silicate glass layer;and a further conductive layer disposed in overlying relation to the silicon oxynitride cap layer and in conductive contact with the patterned conductive layer;the silicon oxynitride cap layer being arranged relative to the underlying fluorinated silicate glass layer and overlying further conductive layer sufficiently for preventing fluorine substance outflow therethrough from the fluorinated silicate glass layer to the further conductive layer.
  3. 8
    A method of forming a patterned conductive layer on a semiconductor substrate comprising the steps of:providing a conductive layer on a surface of a semiconductor substrate;providing a dielectric liner on the conductive layer;providing a fluorinated silicate glass layer on the dielectric liner;providing a silicon oxynitride layer on the fluorinated silicate glass layer sufficiently to prevent fluorine substance outflow therethrough from the fluorinated silicate glass layer and for forming an antireflective coating;providing a photoresist layer on the silicon oxynitride layer;selectively exposing and developing the photoresist layer to uncover selective pattern portions of the underlying silicon oxynitride layer;and removing the uncovered pattern portions of the silicon oxynitride layer and corresponding underlying portions of the fluorinated silicate glass layer and dielectric liner to expose pattern portions of the conductive layer.
  4. 20
    A method of forming a patterned conductive metal layer on a surface of a semiconductor substrate comprising the steps of:providing a conductive metal layer on a surface of a semiconductor substrate;providing a dielectric silicon dioxide liner on the conductive layer;providing a fluorinated silicate glass layer on the dielectric liner;providing a dielectric silicon dioxide cap layer on the fluorinated silicate glass layer;providing a silicon oxynitride layer on the dielectric cap layer and in overlying relation to the fluorinated silicate glass layer sufficiently to prevent fluorine substance outflow therethrough from the fluorinated silicate glass layer and for forming an antireflective coating;providing a photoresist layer on the silicon oxynitride layer;selectively exposing and developing the photoresist layer to uncover selective pattern portions of the underlying silicon oxynitride layer;and collectively removing together the uncovered pattern portions of the silicon oxynitride layer and corresponding underlying portions of the dielectric cap layer, fluorinated silicate glass layer and dielectric liner in a single etching step to expose pattern portions of the conductive layer.
  5. 22
    A method of treating a wafer substrate in semiconductor fabrication for preventing fluorine substance outflow from a fluorinated silicate glass layer thereon to an overlying photoresist layer and simultaneously for suppressing reflection of light waves back into the photoresist layer during photolithographic processing of the photoresist layer to maximize uniformity of patterned light wave exposure and development of the photoresist layer, which comprises interposing a silicon oxynitride layer between the fluorinated silicate glass layer and the photoresist layer sufficiently to form a barrier for preventing said fluorine substance outflow and to form a dielectric antireflective coating in underlying relation to the photoresist layer for suppressing said reflection of light waves.