IL101218A

High mobility integrated drivers for active matrix displays

Abstract

This record has no abstract on file.

IL101218A, drawing sheet 1
Sheet 1 of 14

Term

No projected expiry on record.

  1. Priority
  2. Filed
  3. Published
  4. Today

10 claims: 3 independent, 7 dependent

  1. 1
    A method for fabricating high mobility thin film transistors as integrated drivers on a substrate, comprising:growing a silicon dioxide layer on a silicon substrate;etching the silicon dioxide layer to obtain a plurability of gate dielectric regions of silicon dioxide;growing a epitaxial silicon layer on the silicon substrate and the gate dielectric regions;depositing a barrier layer on the epitaxial silicon layer;depositing a first light shield layer on the barrier layer;bonding a glass substrate to the first light shield layer;etching away the silicon substrate;etching a portion of the epitaxial silicon layer and of the gate dielectric regions to form a plurability of islands situated on the glass substrate, wherein each island has the epitaxial silicon layer incorporating at least one gate dielectric region, the barrier layer and the first light shield layer;coating a glass layer on the islands and exposed portions of the glass substrate on the same surface on which the islands are situated;etching portions of the glass layer to expose at least the gate dielectric regions of each of the islands;depositing a polysilicon layer on each gate dielectric region of each island;etching a portion of the polysilicon layer and forming a polysilicon gate situated on each gate dielectric region;implanting source and drain implantations into the exposed barrier layer on each island, at a thickness greater than the thickness of the gate dielectric region;annealing the source and drain implantations;depositing a silicon dioxide intermetal dielectric layer on the plurability of the islands and on remaining portions of the layer of glass;etching contact vias through the silicon dioxide intermetal dielectric layer to the source and drain implantations on each island;and depositing and etching source and drain metalizations to the source and drain implantations via the contact vias.
  2. 4
    A method for fabricating high mobility thin film transistors as integrated drivers on a substrate, comprising:growing a silicon dioxide layer on a first silicon wafer;growing a doped silicon etch-stop layer on a second silicon wafer;growing a silicon epitaxy layer on the silicon etch-stop layer;bonding the first and second silicon wafers together at the silicon dioxide layer and the silicon epitaxy layer;etching away the second silicon wafer;etching away the silicon etch-stop layer;depositing a barrier layer on the silicon epitaxy layer;depositing a first light shield layer on the silicon epitaxy first layer;bonding a glass substrate to the first light shield layer of the first silicon wafer;etching away the first silicon wafer;and etching regions of the silicon dioxide layer, the silicon epitaxy layer, the barrier layer and the first light shield layer to form a plurability of islands, situated on the glass substrate.
  3. 7
    A plurality of high mobility thin film transistors as integrated drivers on a substrate, comprising:a glass substrate;and a plurality of islands situated a surface on said glass substrate, wherein each island comprises: a light shield layer;a barrier layer situated on said light shield layer;a silicon epitaxial device layer having a first surface situated on said barrier layer and having a second surface;a region silicon dioxide gate dielectric embedded in the silicon epitaxial device layer and having a surface exposed at the second surface of said silicon epitaxial device layer;a polysilicon gate situated on said region of silicon dioxide gate dielectric;a plurality drain-source implantations at the second surface of said silicon epitaxial device layer and adjacent to said region of silicon dioxide gate dielectric, having a depth greater than the depth of said region of silicon dioxide gate dielectric, relative to the second surface of said silicon epitaxial device layer;and a drain-source metalization in contact with each drain-source implantation of said plurality of drain-source implantations.