IP Library › Granted Patent US 12,628,373
Granted Patent B2
US 12,628,373 · App. 18/080,427 · Granted May 12, 2026

Semiconductor device having a field termination structure and a charge balance structure, and method of producing the semiconductor device

Inventors: Michael Hell (Erlangen, DE); Rudolf Elpelt (Erlangen, DE); Frank Hille (Munich, DE); Caspar Leendertz (Munich, DE); Armin Willmeroth (Friedberg, DE)
Assignee: Infineon Technologies AG
H10D30/665H01L21/26513H01L21/266H10D62/111H10D62/127H10D62/8325
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,628,373
App. No.
18/080,427
Granted
May 12, 2026
Kind
B2
Abstract

A semiconductor device includes: a semiconductor substrate having an active device region that includes a plurality of device cells and a termination region between the active device region and an edge of the semiconductor substrate; a field termination structure in the termination region and including a continuous region of a first conductivity type and a plurality of rings of the first conductivity type in the continuous region and having a higher average doping concentration than the continuous region; and a charge balance structure in the active device region and including interleaved columns of the first conductivity type and of a second conductivity type opposite the first conductivity type. The charge balance structure extends into the termination region below the field termination structure such that at least an outermost one of the columns of the first conductivity type is connected to the continuous region of the field termination structure.

Claims (58)

1 . A semiconductor device, comprising:

a semiconductor substrate having an active device region that includes a plurality of device cells and a termination region between the active device region and an edge of the semiconductor substrate;

a field termination structure in the termination region and comprising a continuous region of a first conductivity type and a plurality of rings of the first conductivity type in the continuous region and having a higher average doping concentration than the continuous region; and

a charge balance structure in the active device region and comprising interleaved columns of the first conductivity type and of a second conductivity type opposite the first conductivity type,

wherein the charge balance structure extends into the termination region below the field termination structure such that at least an outermost one of the columns of the first conductivity type is connected to the continuous region of the field termination structure,

wherein a first subset of the plurality of rings of the first conductivity type is positioned between the active device region and a second subset of the plurality of rings of the first conductivity type,

wherein the second subset of the plurality of rings of the first conductivity type is positioned between the first subset of the plurality of rings of the first conductivity type and the edge of the semiconductor substrate,

wherein the charge balance structure extends into the termination region below the first subset of the plurality of rings of the first conductivity type but not below the second subset of the plurality of rings of the first conductivity type.

2 . The semiconductor device of claim 1 , wherein the interleaved columns of the charge balance structure disposed below the first subset of the plurality of rings of the first conductivity type in the termination region have the same spacing and the same vertical and horizontal dimensions as the interleaved columns of the charge balance structure disposed in the active device region.

3 . The semiconductor device of claim 1 , wherein at least some of the columns of the first conductivity type of the charge balance structure disposed below the first subset of the plurality of rings of the first conductivity type in the termination region have a different width and/or depth as the columns of the first conductivity type of the charge balance structure disposed in the active device region.

4 . The semiconductor device of claim 1 , wherein for a first rectilinear part of the termination region, the interleaved columns of the charge balance structure run parallel to the rings of the field termination structure, wherein for a second rectilinear part of the termination region, the interleaved columns of the charge balance structure run transverse to the rings of the field termination structure, and a corner part of the termination region connects the first and second rectilinear parts.

5 . The semiconductor device of claim 1 , wherein the charge balance structure extends to an outer edge of the field termination structure.

6 . The semiconductor device of claim 1 , wherein the continuous region and the plurality of rings of the first conductivity type terminate at a same depth in the semiconductor substrate.

7 . The semiconductor device of claim 1 , wherein the continuous region extends deeper into the semiconductor substrate than the plurality of rings of the first conductivity type.

8 . The semiconductor device of claim 7 , wherein the field termination structure comprises a plurality of rings of the second conductivity type in the continuous region and interleaved with the plurality of rings of the first conductivity type.

9 . The semiconductor device of claim 7 , wherein the continuous region connects each column of the first conductivity type in the termination region to the plurality of rings of the first conductivity type.

10 . The semiconductor device of claim 1 , wherein a width and/or an average doping concentration of the plurality of rings of the first conductivity type decreases in a horizontal direction heading towards the edge of the semiconductor substrate.

11 . The semiconductor device of claim 1 , wherein an average doping concentration of the plurality of rings of the first conductivity type is greater than an average doping concentration of the columns of the first conductivity type.

12 . The semiconductor device of claim 1 , wherein a plurality of the columns of the first conductivity type are disposed below the field termination structure and electrically connected to the plurality of the rings of the first conductivity type.

13 . The semiconductor device of claim 12 , wherein a depth of the plurality of the columns of the first conductivity type disposed below the field termination structure decreases in a horizontal direction heading towards the edge of the semiconductor substrate.

14 . The semiconductor device of claim 12 , wherein a width and/or an average doping concentration of the plurality of the columns of the first conductivity type disposed below the field termination structure decreases in a horizontal direction heading towards the edge of the semiconductor substrate.

15 . The semiconductor device of claim 1 , wherein the semiconductor substrate is a SiC substrate.

16 . The semiconductor device of claim 1 , further comprising a transition region of the first conductivity type between the active device region and the termination region, wherein the transition region has a higher average doping concentration than both the continuous region of the field termination structure and the columns of the first conductivity type, wherein the charge balance structure extends below the transition region and into the termination region, and wherein the columns of the first conductivity type disposed below the transition region are connected to the transition region.

17 . The semiconductor device of claim 1 , wherein the columns of the first and/or second conductivity type in the active device region have a different doping profile than each column of the same conductivity type disposed below the field termination structure.

18 . The semiconductor device of claim 1 , wherein an upper part of the columns of the first conductivity type are doped more heavily than an adjacent upper part of the columns of the second conductivity type, and wherein a lower part of the columns of the first conductivity type are doped more lightly than an adjacent lower part of the columns of the second conductivity type.

19 . A semiconductor device, comprising:

a SiC substrate having an active device region that includes a plurality of device cells and a termination region between the active device region and an edge of the SiC substrate;

a junction termination extension of a first conductivity type in the termination region; and

a charge balance structure in the active device region and comprising interleaved columns of the first conductivity type and of a second conductivity type opposite the first conductivity type,

wherein the charge balance structure extends into the termination region below the junction termination extension,

wherein a depth of the interleaved columns of the charge balance structure disposed below the junction termination extension decreases in a horizontal direction heading towards the edge of the SiC substrate.

20 . A semiconductor device, comprising:

a semiconductor substrate having an active device region that includes a plurality of device cells and a termination region between the active device region and an edge of the semiconductor substrate;

a field termination structure in the termination region and comprising a continuous region of a first conductivity type and a plurality of rings of the first conductivity type in the continuous region and having a higher average doping concentration than the continuous region; and

a charge balance structure in the active device region and comprising interleaved columns of the first conductivity type and of a second conductivity type opposite the first conductivity type,

wherein the charge balance structure extends into the termination region below the field termination structure such that at least an outermost one of the columns of the first conductivity type is connected to the continuous region of the field termination structure,

wherein the continuous region extends deeper into the semiconductor substrate than the plurality of rings of the first conductivity type,

wherein the field termination structure comprises a plurality of rings of the second conductivity type in the continuous region and interleaved with the plurality of rings of the first conductivity type.

21 . A semiconductor device, comprising:

a semiconductor substrate having an active device region that includes a plurality of device cells and a termination region between the active device region and an edge of the semiconductor substrate;

a field termination structure in the termination region and comprising a continuous region of a first conductivity type and a plurality of rings of the first conductivity type in the continuous region and having a higher average doping concentration than the continuous region; and

a charge balance structure in the active device region and comprising interleaved columns of the first conductivity type and of a second conductivity type opposite the first conductivity type,

wherein the charge balance structure extends into the termination region below the field termination structure such that at least an outermost one of the columns of the first conductivity type is connected to the continuous region of the field termination structure,

wherein a plurality of the columns of the first conductivity type are disposed below the field termination structure and electrically connected to the plurality of the rings of the first conductivity type,

wherein a width and/or an average doping concentration of the plurality of the columns of the first conductivity type disposed below the field termination structure decreases in a horizontal direction heading towards the edge of the semiconductor substrate.

22 . A semiconductor device, comprising:

a semiconductor substrate having an active device region that includes a plurality of device cells and a termination region between the active device region and an edge of the semiconductor substrate;

a field termination structure in the termination region and comprising a continuous region of a first conductivity type and a plurality of rings of the first conductivity type in the continuous region and having a higher average doping concentration than the continuous region; and

a charge balance structure in the active device region and comprising interleaved columns of the first conductivity type and of a second conductivity type opposite the first conductivity type,

wherein the charge balance structure extends into the termination region below the field termination structure such that at least an outermost one of the columns of the first conductivity type is connected to the continuous region of the field termination structure,

wherein the columns of the first and/or second conductivity type in the active device region have a different doping profile than each column of the same conductivity type disposed below the field termination structure.

23 . A semiconductor device, comprising:

a semiconductor substrate having an active device region that includes a plurality of device cells and a termination region between the active device region and an edge of the semiconductor substrate;

a field termination structure in the termination region and comprising a continuous region of a first conductivity type and a plurality of rings of the first conductivity type in the continuous region and having a higher average doping concentration than the continuous region; and

a charge balance structure in the active device region and comprising interleaved columns of the first conductivity type and of a second conductivity type opposite the first conductivity type,

wherein the charge balance structure extends into the termination region below the field termination structure such that at least an outermost one of the columns of the first conductivity type is connected to the continuous region of the field termination structure,

wherein an upper part of the columns of the first conductivity type are doped more heavily than an adjacent upper part of the columns of the second conductivity type,

wherein a lower part of the columns of the first conductivity type are doped more lightly than an adjacent lower part of the columns of the second conductivity type.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 18, 2023
From: WILLMEROTH, ARMIN; LEENDERTZ, CASPAR; HILLE, FRANK; HELL, MICHAEL; ELPELT, RUDOLF
To: INFINEON TECHNOLOGIES AG
Reel/Frame 062412/0118 →
Continuity (1)
Related Publication 20240194778A1 · Jun 13, 2024
References Cited (22)
US 7737469B2 · Saito et al. · 2010 [cited by applicant]
US 9978832B1 · Martino · 2018 [cited by applicant]
US 10002920B1 · Bolotnikov et al. · 2018 [cited by applicant]
US 10541325B2 · Elpelt et al. · 2020 [cited by applicant]
US 10886397B2 · Maeta · 2021 [cited by examiner]
US 11145755B2 · Wehrhahn-Kilian et al. · 2021 [cited by applicant]
US 20030222327A1 · Yamaguchi et al. · 2003 [cited by applicant]
US 20070272979A1 · Saito · 2007 [cited by examiner]
US 20100200936A1 · Saito et al. · 2010 [cited by applicant]
US 20190131447A1 · Elpelt et al. · 2019 [cited by applicant]
US 20190148485A1 · Hamada · 2019 [cited by examiner]
US 20190165159A1 · Wehrhahn-kilian et al. · 2019 [cited by applicant]
US 20230223436A1 · Jo et al. · 2023 [cited by applicant]
US 20230246102A1 · Kumagai · 2023 [cited by examiner]
US 20240194778A1 · Hell et al. · 2024 [cited by applicant]
CN 116632037A · 2023 [cited by applicant]
DE 102006023598B3 · 2007 [cited by applicant]
WO 2023071308A1 · 2023 [cited by applicant]
Kimoto, T., et al., “Progress in Ultrahigh-Voltage SiC Devices for Future Power Infrastructure”, IEEE, Department of Electronic Science and Eng., Kyoto University, 2014, pp. 36-39. [cited by applicant]
Kimoto, T., et al., “Ultrahigh-Voltage SiC Bipolar Devices for Future Power Infrastructure”, Dept. of Electronic Sci. and Eng., Kyoto University. [cited by applicant]
Kimoto, Tsunenobu, “Ultrahigh-Voltage SiC Devices for Future Power Infrastructure”, IEEE, Department of Electronic Science and Engineering, Kyoto University, 2013, pp. 22-29. [cited by applicant]
Masuda, Takeyoshi, et al., “Edge Termination Design with Strong Process Robustness for 1.2 kV-class 4H—SiC Super Junction V-groove MOSFETs”, Proceedings of the 2020 32nd International Symposium on Power Semiconductor De… [cited by applicant]