LDMOS transistors and associated systems and methods
A lateral double-diffused metal-oxide-semiconductor field effect transistor includes a silicon semiconductor structure, first and second gate structures, and a trench dielectric layer. The first and second gate structures are disposed on the silicon semiconductor structure and separated from each other in a lateral direction. The trench dielectric layer is disposed in a trench in the silicon semiconductor structure and extends at least partially under each of the first and second gate structures in a thickness direction orthogonal to the lateral direction.
1. A lateral double-diffused metal-oxide-semiconductor field effect (LDMOS) transistor, comprising:
a silicon semiconductor structure;
first and second gate structures disposed on the silicon semiconductor structure and separated from each other in a lateral direction, the first gate structure including a first gate dielectric layer and a first gate conductor stacked on a first outer surface of the silicon semiconductor structure in a thickness direction orthogonal to the lateral direction, and the second gate structure including a second gate dielectric layer and a second gate conductor stacked on the first outer surface of the silicon semiconductor structure in the thickness direction; and
a trench dielectric layer disposed in a trench in the silicon semiconductor structure and extending at least partially under each of the first and second gate structures in the thickness direction, the trench dielectric layer being different from each of the first gate dielectric layer and the second gate dielectric layer, and the trench dielectric layer extending in the thickness direction to the first outer surface of the silicon semiconductor structure.
2. The LDMOS transistor of claim 1 , wherein:
the silicon semiconductor structure comprises:
a substrate,
an n-well formed on the substrate,
a p-body formed in the n-well,
a source n+ region formed in the p-body, and
a drain n+ region formed in the n-well; and
the trench dielectric layer is disposed between the p-body and the drain n+ region in the lateral direction.
3. The LDMOS transistor of claim 2 , wherein:
the silicon semiconductor structure further comprises a source p+ region formed in the p-body;
the source p+ region has a greater p-type dopant concentration than the p-body; and
each of the source and drain n+ regions has a greater n-type dopant concentration than the n-well.
4. The LDMOS transistor of claim 2 , each of the first and second gate conductors being formed of polysilicon, and each of the first and second gate dielectric layers being formed of silicon dioxide.
5. The LDMOS transistor of claim 2 , the p-body extending under the trench dielectric layer in the thickness direction, and the p-body having a graded p-type dopant concentration.
6. The LDMOS transistor of claim 3 , further comprising:
a source electrode disposed on the first outer surface of the silicon semiconductor structure and contacting each of the source p+ region and the source n+ region;
a drain electrode disposed on the first outer surface of the silicon semiconductor structure and contacting the drain n+ region;
a first gate electrode stacked on the first gate conductor; and
a second gate electrode stacked on the second gate conductor.
7. A switching circuit, comprising:
the LDMOS transistor of claim 6 ;
driver circuitry for repeatedly driving the first gate electrode between at least two different voltage magnitudes relative to the source electrode; and
bias circuitry for maintaining the second gate electrode at a positive voltage relative to the source electrode.
8. The switching circuit of claim 7 , the bias circuitry configured to maintain the second gate electrode at a fixed positive voltage relative to the source electrode.
9. A lateral double-diffused metal-oxide-semiconductor field effect (LDMOS) transistor, comprising:
a silicon semiconductor structure;
a first gate structure disposed on the silicon semiconductor structure at least partially over the p-body in a thickness direction, the first gate structure including a first gate dielectric layer and a first gate conductor stacked on a first outer surface of the silicon semiconductor substrate in the thickness direction; and
a second gate structure partially disposed in a trench of the silicon semiconductor structure, the second gate structure including a second gate conductor embedded in a second gate dielectric layer in the trench;
wherein the first gate structure is separated from the trench in a lateral direction, the lateral direction being orthogonal to the thickness direction.
10. The LDMOS transistor of claim 9 , wherein:
the silicon semiconductor structure comprises:
a substrate,
an n-well formed on the substrate,
a p-body formed in the n-well,
a source n+ region formed in the p-body, and
a drain n+ region formed in the n-well;
the first gate structure is disposed on the silicon semiconductor structure at least partially over the p-body in a thickness direction; and
the second gate structure is disposed between the p-body and the drain n+ region in a lateral direction orthogonal to the thickness direction.
11. The LDMOS transistor of claim 10 , wherein the silicon semiconductor structure further comprises a source p+ region formed in the p-body.
12. The LDMOS transistor of claim 10 , the p-body extending deeper into the silicon semiconductor structure in the thickness direction than the second gate structure, and the p-body having a graded p-type dopant concentration.
13. A lateral double-diffused metal-oxide-semiconductor field effect (LDMOS) transistor, comprising:
a silicon semiconductor structure, including:
a substrate,
an n-well formed on the substrate,
a p-body formed in the n-well,
a source n+ region formed in the p-body, and
a drain n+ region formed in the n-well;
a first gate structure disposed on the silicon semiconductor structure at least partially over the p-body in a thickness direction, the first gate structure including a first gate dielectric layer and a first gate conductor stacked on a first outer surface of the silicon semiconductor substrate in the thickness direction;
a second gate structure partially disposed in a trench of the silicon semiconductor structure, the second gate structure being disposed between the p-body and the drain n+ region in a lateral direction orthogonal to the thickness direction, the second gate structure including:
a second gate conductor embedded in a second gate dielectric layer in the trench,
a third gate conductor embedded in the second gate dielectric layer in the trench wherein the second and third gate conductors are separated from each other in the lateral direction.
14. The LDMOS transistor of claim 13 , the second gate conductor being disposed between the p-body and the third gate conductor in the lateral direction, and the third gate conductor being disposed between the second gate conductor and the drain n+ region in the lateral direction.
15. The LDMOS transistor of claim 10 , each of the first and second gate conductors being formed of polysilicon, and each of the first and second gate dielectric layers being formed of silicon dioxide.
16. The LDMOS transistor of claim 10 , further comprising:
a source electrode disposed on the first outer surface of the silicon semiconductor structure and contacting the source n+ region;
a drain electrode disposed on the first outer surface of the silicon semiconductor structure and contacting the drain n+ region;
a first gate electrode stacked on the first gate conductor; and
a second gate electrode stacked on the second gate conductor.
17. A switching circuit, comprising:
the LDMOS transistor of claim 16 ;
driver circuitry for repeatedly driving the first gate electrode between at least two different voltage magnitudes relative to the source electrode; and
bias circuitry for maintaining the second gate electrode at a positive voltage relative to the source electrode.
18. The switching circuit of claim 17 , the bias circuitry configured to maintain the second gate electrode at a fixed positive voltage relative to the source electrode.