EP1782467A1

Semiconductor construction with isolation regions for dram cell

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 19 October 2024, 1.9 years ago.

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61 claims: 5 independent, 56 dependent

  1. 1
    Claims of equivalent WO 2006022765 A1 CLAIMS The invention claimed is:1. A method of forming a semiconductor construction, comprising: providing a semiconductor substrate, the substrate comprising a plurality of trenched isolation regions extending within a monocrystalline semiconductor material, the isolation regions being spaced from one another by first regions comprising the monocrystalline semiconductor material;and patterning the monocrystalline semiconductor material into a plurality of pillars within the first regions.
  2. 14
    A method of forming a semiconductor construction, comprising:providing a semiconductor substrate, the substrate comprising rows of trenches extending within a first semiconductor material, the rows being spaced from one another by first regions comprising the first semiconductor material, the trenches having a first dielectric material therein, the first dielectric material within the trenches forming rows of dielectric material;forming a second semiconductor material over the semiconductor substrate, the second semiconductor material extending over the rows of first dielectric material and also extending across the first regions between the rows of first dielectric material;forming openings extending through the second semiconductor material and to the first dielectric material;filling the openings with a second dielectric material to extend the height of the rows of dielectric material to an upper surface of the second semiconductor material;and patterning the first and second semiconductor materials into a plurality of pillars, the individual pillars comprising a segment of the second semiconductor material over a segment of the first semiconductor material, the pillars extending along rows, at least some of the pillar rows being spaced from one another by second regions comprising one or more of the rows of dielectric material.
  3. 30
    A method of forming a semiconductor construction, comprising:providing a semiconductor substrate, the substrate comprising a plurality of trenches extending within a first semiconductor material, the first semiconductor material comprising an uppermost surface at a first elevational level, the trenches being spaced from one another by first regions comprising the first semiconductor material;filling the trenches with dielectric material;reducing a level of the dielectric material within the trenches to form dielectric material lines within the trenches, the dielectric material lines having uppermost surfaces at a second elevational level which is below the first elevational level;after reducing the level of the dielectric material, forming a second semiconductor material over the semiconductor substrate, the second semiconductor material extending over the dielectric material lines and also extending across the first regions;and patterning the first and second semiconductor materials into a plurality of pillars within the first regions, the individual pillars comprising a segment of the second semiconductor material over a segment of the first semiconductor material, the pillars having uppermost surfaces at a third elevational level which is above the first elevational level.
  4. 41
    A method of forming a semiconductor construction, comprising:providing a semiconductor substrate, the substrate comprising a plurality of trenched isolation regions extending within a monocrystalline first semiconductor material, the isolation regions being spaced from one another by first regions comprising the first semiconductor material;epitaxially growing a second semiconductor material from the first semiconductor material;and patterning the second semiconductor material into a plurality of pillars within the first regions.
  5. 52
    A semiconductor construction, comprising:a semiconductor substrate comprising a monocrystalline semiconductor material;a plurality of isolation regions within the semiconductor material and extending along a defined longitudinal direction, the isolation regions being spaced from one another by longitudinally-extending strips of the monocrystalline semiconductor material;a plurality of lines extending substantially orthogonally to the isolation regions;the lines having dielectric regions over the isolation regions and semiconductor sections between the dielectric regions;an array of pillars extending upwardly from the monocrystalline semiconductor material, the array comprising columns along the defined longitudinal direction and rows along a defined horizontal direction which is substantially orthogonal to the defined longitudinal direction;the columns of the array being between the isolation regions and along the longitudinally-extending strips of the monocrystalline semiconductor material, the pillars comprising mesas of the monocrystalline semiconductor material extending upwardly from the longitudinally-extending strips;a first set of source/drain regions at upper regions of the pillars;a second set of source/drain regions within the sections of the lines;a set of channel regions between the first and second sets of source/drain regions;and a plurality of gateline rows extending along the defined horizontal direction;the gateline rows extending along the rows of the array of pillars;the gateline rows, channel regions, and first and second sets of source/drain regions forming a plurality of transistor devices;individual transistor devices comprising a first source/drain region of the first set, a second source/drain region of the second set, a channel region extending from the first source/drain region to the second source/drain region, and a gate within the gateline row and proximate the channel region.