Method of manufacturing semiconductor devices having a SiGe epitaxtial layer containing Ga
A semiconductor device includes a field effect transistor (FET). The FET includes a channel region and a source/drain region disposed adjacent to the channel region. The FET also includes a gate electrode disposed over the channel region. The FET is an n-type FET and the channel region is made of Si. The source/drain region includes an epitaxial layer including Si 1-x-y M1 x M2 y , where M1 is one or more of Ge and Sn, and M2 is one or more of P and As, and 0.01≤x≤0.1.
1. A method of forming a semiconductor device including a fin field effect transistor (FinFET), the method comprising:
forming a dummy gate structure over a fin structure;
forming a cover layer over a source/drain structure of the fin structure and an isolation insulating layer;
after the cover layer is formed, forming a metal gate structure by a gate replacement process;
after the metal gate structure is formed, removing the cover layer;
after the cover layer is removed, forming a sacrificial layer over the source/drain structure by a deposition method;
patterning the sacrificial layer, thereby forming an opening;
forming a first liner layer on the isolation insulating layer in a bottom of the opening and on at least side faces of the patterned first sacrificial layer;
after the first liner layer is formed, forming a dielectric layer in the opening;
after the dielectric layer is formed, removing the patterned first sacrificial layer, thereby forming a contact opening over the source/drain structure; and
forming a conductive layer in the contact opening,
wherein the source/drain structure includes an epitaxial layer including at least one selected from the group consisting of SiGe doped with Ga, GeSn doped with Ga, SiGeSn doped with Ga.
2. The method of claim 1 , wherein the epitaxial layer includes at least one selected from the group consisting of
Si 1-x-y Ge x Sn y doped with Ga, where 0.6≤x≤1.0,
Si 1-x Ge x doped with Ga, where 0.6≤x<1.0, and
Si 1-x-y Ge x Sn y doped with Ga, where x is equal to or greater than 0.6 and less than 1.0, y is greater than 0 and less than 0.4 and 1-x-y is not zero.
3. The method of claim 2 , wherein a concentration of Ga is in a range from 1×10 18 atoms/cm 3 to 1×10 22 atoms/cm 3 .
4. The method of claim 1 , wherein the FET is a p-type FET.
5. The method of claim 1 , wherein the epitaxial layer includes Si 1-x-y Ge x Sn y doped with Ga, where 0.6≤x≤1.0.
6. The method of claim 1 , wherein the epitaxial layer is further doped with boron or indium.
7. The method of claim 1 , wherein a concentration of Ga decreases from an outer surface of the epitaxial layer toward inside the epitaxial layer.
8. The method of claim 1 , further comprising forming a source/drain contact contacting the epitaxial layer and a source/drain region of the fin structure.
9. The method of claim 1 , wherein before the sacrificial layer is formed, an insulating layer is formed over the source/drain structure and the isolation insulating layer.
10. A method of forming a semiconductor device, the method comprising:
forming a fin structure over a substrate;
forming an isolation insulating layer so that an upper portion of the fin structure protrudes from the isolation insulating layer;
forming an epitaxial layer over a source/drain region of the fin structure;
forming a first dielectric layer over the epitaxial layer;
forming a gate structure including a metal gate electrode;
after the gate structure is formed, removing the first dielectric layer over the epitaxial layer;
after the first dielectric layer is removed, forming a second dielectric layer by deposition and patterning operations such that the epitaxial layer is exposed in an opening formed in the second dielectric layer; and
forming a conductive contact over the exposed epitaxial layer in the opening,
wherein the epitaxial layer includes Ge and Ga.
11. The method of claim 10 , wherein a concentration of Ga is in a range from 1×10 18 atoms/cm 3 to 1×10 22 atoms/cm 3 .
12. The method of claim 10 , wherein the epitaxial layer includes at least one selected from the group consisting of SiGe doped with Ga, GeSn doped with Ga, and SiGeSn doped with Ga.
13. The method of claim 10 , wherein a concentration of Ga decreases from an outer surface of the epitaxial layer toward inside the epitaxial layer.
14. The method of claim 10 , wherein the conductive contact contacts the epitaxial layer and the source/drain region of the fin structure.
15. The method of claim 10 , wherein the conductive contact is in contact with the isolation insulating layer.
16. The method of claim 10 , wherein the conductive contact includes a silicide layer and a metal layer.
17. A method of forming a semiconductor device, the method comprising:
forming a first dielectric layer over an epitaxial layer formed over a source/drain region of a fin structure and an isolation insulating layer;
forming a gate structure including a metal gate electrode;
after the gate structure is formed, removing the first dielectric layer over the epitaxial layer;
forming a sacrificial layer over the epitaxial layer;
patterning the sacrificial layer;
forming a second dielectric layer;
removing the patterned sacrificial layer so that the epitaxial layer is exposed; and
forming a conductive contact over the exposed epitaxial layer, wherein:
a part of the conductive contact is disposed between the isolation insulating layer and the second dielectric layer disposed between the fin structure and an adjacent fin structure, and
the epitaxial layer includes at least one selected from the group consisting of SiGe doped with Ga, GeSn doped with Ga, SiGeSn doped with Ga.
18. The method of claim 17 , wherein before the sacrificial layer is formed, an insulating layer is formed over the source/drain structure and the isolation insulating layer.
19. The method of claim 17 , wherein before the second dielectric layer is formed, an insulating layer is formed over the patterned sacrificial layer and the isolation insulating layer.
20. The method of claim 17 , wherein the sacrificial layer is made of one or more of Group IV elemental or compound materials.