Fabrication of a vertical fin field effect transistor with a reduced contact resistance
A method of forming a vertical fin field effect transistor (vertical finFET) with an increased surface area between a source/drain contact and a doped region, including forming a doped region on a substrate, forming one or more interfacial features on the doped region, and forming a source/drain contact on at least a portion of the doped region, wherein the one or more interfacial features increases the surface area of the interface between the source/drain contact and the doped region compared to a flat source/drain contact-doped region interface.
1. A vertical fin field effect transistor (vertical finFET) with an increased surface area between a bottom source/drain contact and a doped region, comprising:
the doped region on a substrate;
one or more vertical fins on the doped region; and
the bottom source/drain contact on at least a portion of the same doped region as the one or more vertical fins, wherein the doped region has a plurality of interfacial features that increases the surface area of an interface between the bottom source/drain contact and the doped region compared to a flat bottom source/drain contact-doped region interface, wherein each of the plurality of interfacial features has the same width and lengths as each of the one or more vertical fins.
2. The vertical finFET of claim 1 , wherein the doped region and the bottom source/drain contact are electrically coupled together.
3. The vertical finFET of claim 1 , further comprising a gate structure formed on the one or more vertical fins on the same doped region as the bottom source/drain contact.
4. The vertical finFET of claim 1 , further comprising a top source/drain on at least one of the one or more vertical fins, and a top source/drain contact formed on the top source/drain.
5. The vertical finFET of claim 1 , wherein the plurality of interfacial features that increases the surface area of the interface are a plurality of doped extensions that extend into the bottom source/drain contact.
6. The vertical finFET of claim 1 , wherein the plurality of interfacial features that increases the surface area of the interface are a plurality of recesses that allows the bottom source/drain contact to extend into the doped region.
7. A vertical fin field effect transistor (vertical finFET) with an increased surface area between a bottom source/drain contact and a doped region, comprising:
the doped region on a substrate;
one or more vertical fins on the doped region; and
the bottom source/drain contact on at least a portion of the same doped region as the one or more vertical fins and electrically coupled to the same doped region, wherein the doped region has a plurality of doped extensions that extend into the bottom source/drain contact that increases the surface area of an interface between the bottom source/drain contact and the doped region compared to a flat bottom source/drain contact-doped region interface, wherein each of the plurality of doped extensions has the same width and length as each of the one or more vertical fins.
8. The vertical finFET of claim 7 , wherein each of the plurality of doped extensions has a height in the range of about 10 nm to about 40 nm.
9. The vertical finFET of claim 8 , wherein the doped region and each of the plurality of doped extensions include n-type dopants.
10. The vertical finFET of claim 8 , wherein the doped region and each of the plurality of doped extensions include p-type dopants.
11. The vertical finFET of claim 8 , wherein the bottom source/drain contact is tungsten, copper, titanium, aluminum, or combinations thereof.
12. The vertical finFET of claim 11 , further comprising a gate structure formed on one or more vertical fins on the same doped region as the bottom source/drain contact, wherein each of the one or more vertical fins has a width in a range of about 6 nm to about 20 nm.
13. The vertical finFET of claim 12 , further comprising a top source/drain on the one or more vertical fins, and a top source/drain contact formed on the top source/drain.
14. A vertical fin field effect transistor (vertical finFET) with an increased surface area between a bottom source/drain contact and a doped region, comprising:
the doped region on a substrate;
one or more vertical fins on the doped region; and
the bottom source/drain contact on at least a portion of the same doped region as the one or more vertical fins and electrically coupled to the same doped region, wherein
the doped region has a plurality of recesses that extend into the surface of the doped region that increases the surface area of an interface between the bottom source/drain contact and the doped region compared to a flat bottom source/drain contact-doped region interface, wherein
each of the plurality of recesses has the same width and length as each of the one or more vertical fins and a depth greater than the width of the one or more vertical fin.
15. The vertical finFET of claim 14 , wherein each of the plurality of recesses do not extend all the way through the doped region.
16. The vertical finFET of claim 14 , wherein each of the plurality of recesses has a depth in the range of about 10 nm to about 40 nm.
17. The vertical finFET of claim 16 , wherein each of the plurality of recesses has a width in the range of about 6 nm to about 20 nm, and a length in the range of about 100 nm to about 1000 nm.
18. The vertical finFET of claim 17 , wherein the bottom source/drain contact is tungsten, copper, titanium, aluminum, or combinations thereof, and the bottom source/drain contact fills the recesses.
19. The vertical finFET of claim 18 , further comprising a gate structure formed on one or more vertical fins on the same doped region as the bottom source/drain contact.
20. The vertical finFET of claim 19 , further comprising a top spacer layer on the gate structure, and a top source/drain on the one or more vertical fins, and a top source/drain contact formed on the top source/drain.