Nanosheet substrate isolation scheme by lattice matched wide bandgap semiconductor
A thin layer of lattice matched wide bandgap semiconductor material having semi-insulating properties is employed as an isolation layer between the substrate and a vertical stack of suspended semiconductor channel material nanosheets. The presence of such an isolation layer eliminates the parasitic leakage path between the source region and the drain region that typically occurs through the substrate, while not interfering with the CMOS device that is formed around the semiconductor channel material nanosheets.
1. A semiconductor structure comprising:
a plurality of stacked and suspended semiconductor channel material nanosheets located above an isolation layer that is located directly on a surface of a substrate, wherein the substrate is composed of a first semiconductor material having a first bandgap, and the isolation layer is composed of a second semiconductor material having a second bandgap that is larger than the first bandgap, wherein the second semiconductor material is lattice matched to the first semiconductor material and is doped such that the second semiconductor material has semi-insulating properties, and wherein the second semiconductor material is composed of GaP doped with one of chromium, zinc and tin, or InP doped with iron;
a functional gate structure surrounding a portion of each semiconductor channel material nanosheet of the plurality of stacked and suspended semiconductor channel material nanosheets; and
a source/drain (S/D) region on each side of the functional gate structure and physically contacting sidewalls of each semiconductor channel material nanosheet of the plurality of stacked and suspended semiconductor channel material nanosheets, wherein the S/D region has a bottommost surface that directly contacts a surface of the isolation layer.
2. The semiconductor structure of claim 1 , wherein the first semiconductor material is composed of Si, and the second semiconductor material is composed of GaP doped with chromium.
3. The semiconductor structure of claim 2 , wherein each of the semiconductor channel material nanosheet is composed of silicon.
4. The semiconductor structure of claim 1 wherein the first semiconductor material is composed of Si, and the second semiconductor material is composed of GaP doped with zinc or GaP doped with tin.
5. The semiconductor structure of claim 4 , wherein each of the semiconductor channel material nanosheet is composed of silicon.
6. The semiconductor structure of claim 1 , further comprising an interlevel dielectric (ILD) material located above each S/D region.
7. The semiconductor structure of claim 6 , wherein the ILD material atop each S/D region has a topmost surface that is coplanar with a topmost surface of the functional gate structure.
8. The semiconductor structure of claim 1 , wherein the sidewalls of each semiconductor channel material nanosheet of the plurality of stacked and suspended semiconductor channel material nanosheets are vertically aligned to each other.
9. A semiconductor structure comprising:
an nFET device region comprising:
a plurality of first stacked and suspended semiconductor channel material nanosheets located above a first isolation layer that is located directly on a surface of a substrate, wherein the substrate is composed of a first semiconductor material having a first bandgap, and the first isolation layer is composed of a second semiconductor material having a second bandgap that is larger than the first bandgap, wherein the second semiconductor material is lattice matched to the first semiconductor material and contains a p-type dopant, and wherein the second semiconductor material is composed of GaP doped with zinc;
a first functional gate structure surrounding a portion of each semiconductor channel material nanosheet of the plurality of first stacked and suspended semiconductor channel material nanosheets; and
a first source/drain (S/D) region located on each side of the first functional gate structure and physically contacting sidewalls of each semiconductor channel material nanosheet of the plurality of first stacked and suspended semiconductor channel material nanosheets, wherein the first S/D region has a bottommost surface that directly contacts a surface of the first isolation layer; and
a pFET device region laterally adjacent to the nFET device region and comprising:
a plurality of second stacked and suspended semiconductor channel material nanosheets located above a second isolation layer that is directly on the surface of the substrate, wherein the second isolation layer is composed of another second semiconductor material having a bandgap that is larger than the first bandgap, wherein the another second semiconductor material is lattice matched to the first semiconductor material and contains an n-type dopant, and wherein the another second semiconductor material is composed of GaP doped with tin;
a second functional gate structure surrounding a portion of each semiconductor channel material nanosheet of the plurality of second stacked and suspended semiconductor channel material nanosheets; and
a second source/drain (S/D) region located on each side of the second functional gate structure and physically contacting sidewalls of each semiconductor channel material nanosheet of the plurality of second stacked and suspended semiconductor channel material nanosheets, wherein the second S/D region has a bottommost surface that directly contacts a surface of the second isolation layer.
10. The semiconductor structure of claim 9 wherein the first semiconductor material is composed of Si.
11. The semiconductor structure of claim 10 , wherein each of the semiconductor channel material nanosheet of the plurality of first and second stacked and suspended semiconductor channel is composed of silicon.
12. The semiconductor structure of claim 9 , further comprising an interlevel dielectric (ILD) material located above the first and second S/D regions.
13. The semiconductor structure of claim 12 , wherein the ILD material atop the first and second S/D regions has a topmost surface that is coplanar with a topmost surface of both the first and second functional gate structures.