Claims
- 1. A method of forming a portion of an integrated circuit comprising:
providing a semiconductor layer; implanting heavy ions into at least a portion of the semiconductor layer; recrystalizing the ion-implanted portion of the semiconductor layer; performing one of: depositing amorphous silicon onto the ion-implanted portion of the semiconductor layer, and epitaxially growing a strained-silicon layer on the ion-implanted portion of the semiconductor layer, the strain being induced by the recrystalized ion-implanted portion of the semiconductor layer; and upon depositing the amorphous silicon, forming the strained-silicon layer in the deposited amorphous silicon, the strain being induced by the recrystalized ion-implanted portion of the semiconductor layer.
- 2. A method as defined in claim 1 further comprising:
forming a CMOS device on the strained-silicon layer, the CMOS device having a channel region formed in the strained-silicon layer.
- 3. A method of forming an integrated circuit comprising:
providing a semiconductor layer; forming a region of the semiconductor layer having desired ions therein by implanting the desired ions into the region of the semiconductor layer; performing one of: (a) depositing an amorphous silicon layer on the region of the semiconductor substrate having the desired ions therein, and (b) epitaxially growing a silicon layer on the region of the semiconductor substrate having the desired ions therein; forming a CMOS device above one of: the amorphous silicon layer and the epitaxially grown silicon layer.
- 4. A method as defined in claim 3 further comprising:
providing the semiconductor layer having a crystalline lattice; and the step of forming the region of the semiconductor layer having the desired ions therein further comprising: forming the desired ions in substitutional positions in the crystalline lattice of the semiconductor layer by implanting the desired ions into the region of the semiconductor layer and re-crystallizing the region of the semiconductor layer by annealing the crystalline lattice.
- 5. A method as defined in claim 4 further comprising:
generating a larger spacing between atoms of the crystalline lattice of the region of the semiconductor layer having the desired ions therein by the step of forming the desired ions in substitutional positions in the crystalline lattice.
- 6. A method as defined in claim 5 further comprising:
upon depositing the amorphous silicon layer, converting the amorphous silicon layer into a strained-silicon layer.
- 7. A method as defined in claim 3 further comprising:
forming a graded ion concentration in the region of the semiconductor layer having desired ions therein by implanting the desired ions using a single ion implantation step.
- 8. A method as defined in claim 3 further comprising:
forming a graded ion concentration in the region of the semiconductor layer having desired ions therein by implanting the desired ions using multiple ion implantations.
- 9. A method as defined in claim 3 further comprising:
performing one of: (a) depositing the amorphous silicon layer to a thickness of about 50-300 Angstroms, and (b) epitaxially growing the silicon layer to a thickness of about 50-300 Angstroms.
- 10. A method as defined in claim 3 wherein:
the step of forming the region of the semiconductor layer having the desired ions therein further comprises: implanting heavy ions into the region of the semiconductor layer.
- 11. A method as defined in claim 10 wherein:
the step of implanting the heavy ions further comprises: implanting germanium ions into the region of the semiconductor layer.
- 12. A method as defined in claim 10 wherein:
the step of implanting the heavy ions further comprises: implanting antimony ions into the region of the semiconductor layer.
- 13. A method as defined in claim 3 wherein the step of epitaxially growing the silicon layer on the region of the semiconductor substrate further comprises forming the epitaxially grown silicon layer into a strained-silicon layer.
- 14. A method of forming a portion of an integrated circuit comprising:
providing a semiconductor layer; epitaxially growing a silicon-ion layer onto the portion of the semiconductor layer; depositing amorphous silicon onto the silicon-ion layer; and forming a strained-silicon layer in the deposited amorphous silicon, the strain being induced by the epitaxially grown silicon-ion layer.
- 15. An integrated circuit comprising:
a semiconductor layer; a layer of one of: (a) an ion-implanted region formed in the semiconductor layer, and (b) an epitaxially grown silicon-ion formed on the semiconductor layer; a strained-silicon layer formed by one of: (c) amorphous silicon deposition on the ion-implanted region of the semiconductor layer, (d) amorphous silicon deposition on the epitaxially grown silicon-ion layer, and (e) epitaxially grown silicon on the ion-implanted region of the semiconductor layer; and a CMOS device formed on the strained-silicon layer.
- 16. An integrated circuit as defined in claim 15 wherein the strained-silicon layer is formed to a thickness of about 50-300 Angstroms.
- 17. An integrated circuit as defined in claim 15 wherein:
the semiconductor layer has a crystalline lattice; and for the ion-implanted region of the semiconductor layer: desired ions increase spacing between atoms of the crystalline lattice.
- 18. An integrated circuit as defined in claim 15 wherein:
for the ion-implanted region: a graded ion concentration of desired ions is formed in the ion-implanted region by implanting the desired ions into the semiconductor layer using a single ion implantation step.
- 19. An integrated circuit as defined in claim 15 wherein:
for the ion-implanted region: a graded ion concentration of desired ions is formed in the ion-implanted region by implanting the desired ions into the semiconductor layer using multiple ion implantations.
- 20. An integrated circuit as defined in claim 15 wherein the ion-implanted region and the epitaxially grown silicon-ion layer include heavy ions therein.
- 21. An integrated circuit as defined in claim 20 wherein the heavy ions include germanium ions.
- 22. An integrated circuit as defined in claim 20 wherein the heavy ions include antimony ions.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This invention is related to an invention for Ion Implantation in Channel Region of CMOS Device for Enhanced Carrier Mobility, described in U.S. patent application Ser. No. 10/418,385, filed Apr. 18, 2003, and to an invention for Ion Recoil Implantation and Enhanced Carrier Mobility in CMOS Device, described in U.S. patent application Ser. No. 10/418,375, filed Apr. 18, 2003, both invented by the present inventors, and assigned to the assignee of the present invention. The subject matter of these applications is incorporated herein by this reference.