IP Library › Granted Patent US 9,406,763
Granted Patent B2
US 9,406,763 · App. 14/531,202 · Granted Aug 2, 2016

Stress-reduced field-effect semiconductor device and method for forming therefor

Inventors: Stefan Sedlmaier (Munich, DE); Markus Zundel (Egmating, DE); Franz Hirler (Isen, DE); Johannes Baumgartl (Riegersdorf, AT); Anton Mauder (Kolbermoor, DE); Ralf Siemieniec (Villach, AT); Oliver Blank (Villach, AT); Michael Hutzler (Villach, AT)
Assignee: Infineon Technologies Austria AG
H01L29/407H01L21/765H01L29/0653H01L29/515H01L29/66734H01L29/7397H01L29/7804H01L29/7811H01L29/7813H01L29/7843H01L29/41766H01L29/42368
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Quick Facts
Patent No.
US 9,406,763
App. No.
14/531,202
Granted
Aug 2, 2016
Kind
B2
Abstract

A field-effect semiconductor device is provided. The field-effect semiconductor device includes a semiconductor body with a first surface defining a vertical direction. In a vertical cross-section the field-effect semiconductor device further includes a vertical trench extending from the first surface into the semiconductor body and comprising a field electrode, a cavity at least partly surrounded by the field electrode, and an insulation structure substantially surrounding at least the field electrode. An interface between the insulation structure and the surrounding semiconductor body is under tensile stress and the cavity is filled or unfilled so as to counteract the tensile stress.

Claims (27)

1. A field-effect semiconductor device, comprising a semiconductor body with a first surface defining a vertical direction, the field-effect semiconductor device further comprising in a vertical cross-section:

a vertical trench extending from the first surface into the semiconductor body and comprising a field electrode, a cavity at least partly surrounded by the field electrode, and an insulation structure substantially surrounding at least the field electrode,

wherein an interface between the insulation structure and the surrounding semiconductor body is under tensile stress and the cavity is filled or unfilled so as to counteract the tensile stress.

2. The field-effect semiconductor device of claim 1 , wherein the cavity has a vertical extension larger than about 20 nm.

3. The field-effect semiconductor device of claim 1 , wherein the cavity has, in the vertical cross-section, a maximum horizontal extension and a maximum vertical extension larger than the maximum horizontal extension.

4. The field-effect semiconductor device of claim 1 , wherein the vertical trench has a maximum vertical extension, and wherein the cavity has a maximum vertical extension larger than about third of the maximum vertical extension of the vertical trench.

5. The field-effect semiconductor device of claim 1 , wherein the cavity adjoins the field electrode.

6. The field-effect semiconductor device of claim 1 , wherein the cavity is completely surrounded by the field electrode.

7. The field-effect semiconductor device of claim 1 , wherein the cavity is, in the vertical cross-section, substantially centered with regard to a central vertical axis of the field electrode.

8. The field-effect semiconductor device of claim 1 , wherein the insulation structure comprises different dielectric materials.

9. The field-effect semiconductor device of claim 1 , wherein the cavity extends, in a direction which is substantially orthogonal to the vertical cross-section, substantially parallel to the field electrode.

10. A semiconductor device, comprising:

a semiconductor body comprising a first surface defining a vertical direction, a substantially vertically orientated outer edge, and an active area spaced apart from the outer edge, the active area comprising a plurality of insulated gate electrodes arranged next to the first surface and extending into the semiconductor body, and a plurality of dielectric regions spaced apart from the insulated gate electrodes and extending from the first surface into the semiconductor body and at least partially vertically below the insulated gate electrodes; and

at least one of a cavity arranged below the first surface and between the outer edge and the active area, a cavity arranged below the first surface and in a kerf region, a cavity arranged next to a lowermost portion of at least one of the plurality of dielectric regions, and a cavity comprising, in a vertical cross-section, a maximum horizontal extension and a maximum vertical extension larger than the maximum horizontal extension,

wherein an interface between the dielectric regions and the surrounding semiconductor body is under tensile stress and the cavity is filled or unfilled so as to counteract the tensile stress.

11. The semiconductor device of claim 10 , wherein the semiconductor device includes a plurality of cavities forming a lattice.

12. The semiconductor device of claim 10 , wherein the semiconductor body comprises a source region, a drift region and a body region forming respective pn-junctions with the source region and the drift region, wherein each of the insulated gate electrodes is insulated from the semiconductor body by a gate dielectric region adjoining the source region, the body region and the drift region, and wherein each one of the plurality of dielectric regions extends into the semiconductor body at least along the drift region.

13. The field-effect semiconductor device of claim 10 , wherein the cavity is at least partially filled with an elastic material.

14. A field-effect semiconductor device, comprising:

a semiconductor body comprising a first surface defining a vertical direction;

a trench gate electrode extending from the first surface into the semiconductor body and insulated from the semiconductor body by a gate dielectric region; and

a cavity arranged, in the vertical direction, at least partially below the trench gate electrode, and configured to reduce mechanical stress in the semiconductor body,

wherein the cavity is unfilled.

15. The field-effect semiconductor device of claim 14 , wherein the cavity has, in a vertical cross-section, a maximum horizontal extension larger than about 20 nm and a maximum vertical extension larger than the maximum horizontal extension.

16. The field-effect semiconductor device of claim 14 , wherein the trench gate electrode, the gate dielectric region and the cavity are formed in a vertical trench comprising, in a vertical cross-section and in a vertical depth, a horizontal extension, and wherein the cavity comprises, in the vertical cross-section and in the vertical depth, a horizontal extension which is at least about a fifth of the horizontal extension of the vertical trench.

17. The field-effect semiconductor device of claim 1 , wherein the cavity is filled by any one of: a resin, an imide and an aerogel.

18. The semiconductor device of claim 10 , wherein a maximum distance of the dielectric regions to the first surface substantially matches a maximum distance of the cavity to the first surface.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 13, 2015
From: MAUDER, ANTON; HIRLER, FRANZ; ZUNDEL, MARKUS; BAUMGARTL, JOHANNES; BLANK, OLIVER; HUTZLER, MICHAEL; SEDLMAIER, STEFAN; SIEMIENIEC, RALF
To: INFINEON TECHNOLOGIES AUSTRIA AG
Reel/Frame 034693/0640 →
Continuity (2)
Continuation 13429525 · Mar 26, 2012
Related Publication 20150137222A1 · May 21, 2015