LDMOS with enhanced safe operating area and method of manufacture
An integrated circuit comprising an n-type drift region, a gate structure directly on a first portion of the n-type drift region, a drain structure formed in a second portion of the n-type drift region, the gate structure and the drain structure being separated by a drift region length, a resist protective oxide (RPO) formed over a portion of the n-type drift region between the gate structure and the drain structure, a field plate contact providing a direct electrical connection to the resist protective oxide.
1. An integrated circuit comprising:
a gate structure;
a drain structure, wherein the gate structure and the drain structure are separated by a drift region length (Lds);
a resist protective oxide (RPO) between the gate structure and the drain structure;
a field plate contact in direct electrical connection with the resist protective oxide;
a drain structure contact in direct electrical connection with the drain structure, wherein the drain structure contact and the field plate contact are separated by a dielectric material; and
a conductive pattern in electrical contact with both the field plate contact and the drain structure contact.
2. The integrated circuit according to claim 1 , wherein:
the conductive pattern in electrical contact between the drain structure contact and the field plate contact wherein an applied voltage will be the drain voltage.
3. The integrated circuit according to claim 2 , wherein:
the field plate contact is separated from the gate structure by a first distance (D 1 ), with the first distance being at least 35% of the Lds.
4. The integrated circuit according to claim 3 , wherein:
the first distance is between 40% and 70% of the Lds.
5. The integrated circuit according to claim 1 , wherein:
the field plate contact has a contact width (D 3 ), and
the contact width is between 10% and 30% of the Lds.
6. The integrated circuit according to claim 1 , wherein:
the field plate contact comprises a first field plate contact having a first contact width and a second field plate contact having a second contact width,
the first contact width is at least 10% of the Lds, and
the second contact width is at least 10% of the Lds.
7. The integrated circuit according to claim 1 , wherein:
the resist protective oxide has an RPO thickness (D 2 ), and
the RPO thickness is at least 10% of the Lds.
8. The integrated circuit according to claim 1 , wherein:
the resist protective oxide has an RPO thickness (D 2 ); and
wherein the RPO thickness is between 0.05 μm and 0.2 μm.
9. The integrated circuit according to claim 1 , wherein:
the Lds is at least 0.5 μm.
10. A method of manufacturing an integrated circuit comprising:
forming a gate structure;
forming a drain structure, wherein the gate structure and the drain structure are separated by a drift region length (Lds);
forming a resist protective oxide (RPO) structure between the gate structure and the drain structure;
forming a field plate contact in direct electrical connection to the resist protective oxide structure;
forming a drain structure contact in direct electrical connection with the drain structure, wherein the drain structure contact and the field plate contact are separated by a dielectric region; and
forming a conductive pattern over the dielectric region, wherein the conductive pattern electrically connects the drain structure contact and the field plate contact.
11. The method according to claim 10 , further comprising:
forming a sidewall structure adjacent the gate structure; and
forming a portion of the resist protective oxide (RPO) structure adjacent the sidewall structure.
12. The method of claim 11 , further comprising:
extending the resist protective oxide (RPO) structure over the sidewall structure and an upper portion of the gate structure.
13. The method of claim 10 , further comprising:
extending the resist protective oxide (RPO) structure over an upper portion of the gate structure.
14. The method of claim 10 , further comprising:
defining a plurality of active areas on the P-type substrate;
forming field oxide (FOX) structures between adjacent active areas; and
positioning the field plate contact closer to the drain structure than to the gate structure.
15. The method according to claim 10 , further comprising:
positioning the field plate contact on the resist protective oxide (RPO) at an offset from the gate structure of between 40% and 70% of the Lds.
16. The method according to claim 10 , further comprising:
positioning the field plate contact on the resist protective oxide (RPO) at a contact point that is separated from the gate structure by between 40% and 70% of the Lds.
17. The method according to claim 10 , further comprising:
forming a plurality of field plate contacts on the resist protective oxide (RPO) with the field plate contact offset from the gate structure by at least 40% of the Lds.
18. A method of improving high-voltage performance in a LDMOS integrated circuit comprising:
depositing an insulating field plate over a portion of an n-type drift region;
forming a drain structure between the insulating field plate and an isolation region;
forming conductive jumper between the insulating field plate and the drain structure; and
applying a field plate voltage to the conductive jumper during device operation.
19. The method according to claim 18 , wherein:
the applied field plate voltage is at least 14V.
20. The method according to claim 18 , wherein:
the applied field plate voltage is a drain voltage (Vdd).