IP Library Patent Application 11298440
Patent Application
App. No. 11/298,440

Isotopically pure silicon-on-insulator wafers and methods of making same

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Patent No.
US None
App. No.
11/298,440
Abstract

A semiconductor wafer structure having a device layer, an insulating layer, a semiconductor material layer and a substrate which is capable of supporting increased semiconductor device densities or increased semiconductor device power. One or more of the layers includes an isotopically enriched semiconductor material having a higher thermal conductivity than semiconductor material having naturally occurring isotopic ratios. The insulating layer may be formed by implanting atoms or ions into a semiconductor layer and subjecting the wafer to heat treatment resulting in the implanted atoms or ions reacting with the semiconductor layer to form an insulating layer.

Claims (20)

1 . A multi-layer semiconductor wafer structure comprising:

a substrate;

an isotopically enriched semiconductor material layer;

an insulating layer; and,

a device layer of semiconducting material,

wherein said isotopically enriched semiconductor material layer comprises at least one of the isotopically enriched elements silicon, germanium, and silicon-germanium alloys.

2 . The wafer structure of claim 1 , wherein the isotopically enriched semiconductor material layer comprises a semiconductor material selected from the group consisting of silicon enriched to at least 95% of the silicon-28 isotope, germanium enriched to at least 80% of one of the germanium isotopes, silicon-germanium alloys enriched to at least 95% of the silicon-28 isotope, and combinations and alloys thereof.

3 . The wafer structure of claim 1 , wherein the isotopically enriched semiconductor material layer comprises multiple layers of semiconductor material selected from the group consisting of silicon enriched to at least 95% of the silicon-28 isotope, germanium enriched to at least 80% of one of the germanium isotopes, silicon-germanium alloys enriched to at least 95% of the silicon-28 isotope, and combinations and alloys thereof.

4 . The wafer structure of claim 1 , wherein the isotopically enriched semiconductor material layer is formed by a method selected from the group consisting of chemical vapor deposition, molecular beam epitaxy, vapor phase epitaxy, liquid phase epitaxy, atomic layer deposition or physical vapor deposition.

5 . The wafer structure of claim 1 , wherein the isotopically enriched semiconductor material layer and the device layer are both isotopically enriched semiconductor material layers having the same elemental composition.

6 . The wafer structure of claim 1 , wherein the device layer comprises a semiconductor material selected from the group consisting of silicon enriched to at least 95% of the silicon-28 isotope, germanium enriched to at least 80% of one of the germanium isotopes, silicon-germanium alloys enriched to at least 95% of the silicon-28 isotope, and combinations and alloys thereof.

7 . The wafer structure of claim 1 , wherein the insulating layer is formed by implantation of oxygen or nitrogen atoms or ions into an isotopically enriched semiconductor layer.

8 . The wafer structure of claim 1 , wherein the insulating layer is silicon dioxide or silicon nitride.

9 . The wafer structure of claim 1 , wherein the substrate comprises silicon with natural isotopic ratios and the semiconductor material layer comprises silicon with at least 95% of the silicon-28 isotope.

10 . The wafer structure of claim 1 , wherein the substrate comprises silicon with natural isotopic ratios and the semiconductor material layer comprises silicon with at least 98% of the silicon-28 isotope.

11 . The wafer structure of claim 1 , wherein the substrate comprises silicon with natural isotopic ratios and the semiconductor material layer comprises silicon with at least 99% of the silicon-28 isotope.

12 . The wafer structure of claim 1 , wherein the substrate comprises a semiconductor material selected from the group consisting of silicon, germanium, silicon-germanium alloys, and combinations and alloys thereof.

13 . The wafer structure of claim 1 , wherein the substrate comprises a semiconductor material selected from the group consisting of silicon enriched to at least 95% of the silicon-28 isotope, germanium enriched to at least 80% of one of the germanium isotopes, silicon-germanium alloys enriched to at least 95% of the silicon-28 isotope, and combinations and alloys thereof.

14 . The wafer structure of claim 1 , wherein the substrate comprises silicon of natural isotopic ratios, the isotopically enriched semiconductor layer is composed of at least 98% of the silicon-28 isotope, the electrically insulating layer is formed by thermal oxidation of the isotopically enriched silicon-28 layer, and the device layer comprises one or more layers of silicon enriched to at least 95% of the silicon-28 isotope, germanium enriched to at least 80% of one of the germanium isotopes, or silicon-germanium alloys enriched to at least 95% of the silicon-28 isotope.

15 . The wafer structure of claim 1 , wherein the substrate comprises silicon of natural isotopic ratios, the isotopically enriched semiconductor layer is composed of at least 98% of the silicon-28 isotope, the electrically insulating layer is formed by thermal oxidation of the isotopically enriched silicon-28 layer, and the device layer comprises at least one layer of silicon, germanium, and silicon-germanium alloys.