IC including standard cells and SRAM cells
An IC is provided. The IC includes a plurality of first cells arranged in a column of a first array, and a plurality of second cells arranged in a column of a second array. P-type fin field-effect transistors of the plurality of first cells share a first semiconductor fin including silicon germanium. P-type FinFETs of two adjacent second cells share a second semiconductor fin including Si. The first array is separated from the second array. A length of the second semiconductor fin is shorter than a length of the first semiconductor fin.
1. An integrated circuit (IC), comprising:
a plurality of first cells arranged in a column of a first array, wherein P-type fin field-effect transistors of the plurality of first cells share a first semiconductor fin comprising silicon germanium; and
a plurality of second cells arranged in a column of a second array, wherein P-type FinFETs of two adjacent second cells share a second semiconductor fin comprising Si,
wherein the first array is separated from the second array,
wherein a length of the second semiconductor fin is shorter than a length of the first semiconductor fin.
2. The IC as claimed in claim 1 , wherein in the first cell, source and drain regions of the P-type FinFET extending from the first semiconductor fin of the P-type FinFET comprise a doping layer comprising SiGe and Boron, and the width of the doping layer is wider than that of a channel region in the P-type FinFET.
3. The IC as claimed in claim 2 , wherein in the first cell, Ge atomic concentration in the channel region of the P-type FinFET is in a range from about 10% to about 40%.
4. The IC as claimed in claim 1 , wherein in the second cell, source and drain regions of the P-type FinFET extending from the second semiconductor fin of the P-type FinFET comprise a doping layer comprising SiGe and Boron, and width of the doping layer is wider than that of a channel region of the P-type FinFET.
5. The IC as claimed in claim 1 , wherein source and drain regions of the P-type FinFETs of the first cells and the second cells comprise SiGe and a p-type impurity, and Ge atomic concentration in the source and drain regions of the P-type FinFETs of the first cells and the second cells is in a range from about 30% to about 75%.
6. The IC as claimed in claim 1 , wherein the number of P-type FinFETs of the plurality of first cells that share the first semiconductor fin is greater than or equal to 3.
7. An integrated circuit (IC), comprising:
a plurality of first cells arranged in a column of a first array, wherein P-type fin field-effect transistors (FinFETs) of the plurality of first cells share a first semiconductor fin comprising a first material, and N-type FinFETs of the plurality of first cells share a second semiconductor fin comprising a second material that is different from the first material; and
a plurality of second cells arranged in a column of a second array, wherein P-type FinFETs of two adjacent second cells share a third semiconductor fin comprising a third material different from the first material, and N-type FinFETs of the plurality of second cells share a fourth semiconductor fin comprising the second material,
wherein the first material comprises silicon germanium (SiGe),
wherein the first array is separated from the second array,
wherein lengths of the first, second and fourth semiconductor fins are longer than a length of the third semiconductor fin.
8. The IC as claimed in claim 7 , wherein in the first cell, source and drain regions of the P-type FinFET extending from the first semiconductor fin of the P-type FinFET comprise a doping layer comprising SiGe and Boron, and width of the doping layer is wider than that of channel region of the P-type FinFET.
9. The IC as claimed in claim 8 , wherein in the first cell, Ge atomic concentration in the channel region of the P-type FinFET is in a range from about 10% to about 40%.
10. The IC as claimed in claim 7 , wherein in the second cell, source and drain regions of the P-type FinFET extending from the third semiconductor fin of the P-type FinFET comprise a doping layer comprising SiGe and Boron, and width of the doping layer is wider than that of channel region of the P-type FinFET.
11. The IC as claimed in claim 7 , wherein Ge atomic concentration in source and drain regions of the P-type FinFETs of the first cells and the second cells is in a range from about 30% to about 75%.
12. The IC as claimed in claim 7 , wherein source and drain regions of the plurality of P-type FinFETs comprise SiGe and a p-type impurity, and the number of P-type FinFETs of the plurality of first cells that share the first semiconductor fin is greater than or equal to 3.
13. An integrated circuit (IC), comprising:
a plurality of P-type fin field-effect transistors (FinFETs), comprising:
at least one first P-type FinFET disposed in a first cell, comprising a silicon germanium (SiGe) channel region; and
at least one second P-type FinFET disposed in a second cell, comprising a Si channel region, wherein source and drain regions of the plurality of P-type FinFETs comprise SiGe and a p-type impurity,
wherein the first cell is separated from the second cell.
14. The IC as claimed in claim 13 , wherein in the first cell, a sidewall depth of the SiGe channel region of the P-type FinFETs is in a range from about 35 nm to about 90 nm.
15. The IC as claimed in claim 13 , wherein the source and drain regions of the first P-type FinFET extending from the SiGe channel region of the first P-type FinFET comprise a doping layer comprising SiGe and Boron, and width of the doping layer is wider than that of the SiGe channel region of the first P-type FinFET.
16. The IC as claimed in claim 15 , wherein in the first P-type FinFET, Ge atomic concentration in the SiGe channel region is in a range from about 10% to about 40% and is less than Ge atomic concentration in the doping layer.
17. The IC as claimed in claim 13 , wherein the source and drain regions of the second P-type FinFET extending from the Si channel region of the second P-type FinFET comprise a doping layer comprising SiGe and Boron, and width of the doping layer is wider than that of the Si channel region of the second P-type FinFET.
18. The IC as claimed in claim 13 , wherein Ge atomic concentration in the source and drain regions of the plurality of P-type FinFETs is in a range from about 30% to about 75%.
19. The IC as claimed in claim 13 , further comprising:
a plurality of N-type FinFETs,
wherein each of the plurality of N-type FinFET comprises a Si channel region, and source and drain regions of the N-type FinFET comprise SiP, SiC, SiPC, SiAs, Si, or a combination thereof.
20. The IC as claimed in claim 13 , wherein channel width of the Si channel region of the second P-type FinFET is narrower than channel width of the SiGe channel region of the first P-type FinFET.