IP Library Granted Patent US 9,312,345
Granted Patent B2
US 9,312,345 · App. 14/554,435 · Granted Apr 12, 2016

High-resistive silicon substrate with a reduced radio frequency loss for a radio-frequency integrated passive device

Inventor: Atte Haapalinna (Espoo, FI)
Assignee: OKMETIC OYJ
H01L29/32H01L21/02002H01L21/02008H01L21/02013H01L21/304H01L23/66H01L29/04H01L29/16H01L2924/0002
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Quick Facts
Patent No.
US 9,312,345
App. No.
14/554,435
Granted
Apr 12, 2016
Kind
B2
Abstract

The application relates to a high-resistivity silicon substrate ( 100 ) with a reduced radio frequency loss for a radio frequency integrated passive device. The substrate comprising a bulk zone ( 110 ) comprising high-resistivity bulk silicon and a preserved sub-surface lattice damage zone ( 120 b ) comprising fractured silicon above the bulk zone. The lattice damage zone is processed into the substrate and the preserved lattice damage zone is configured to achieve the RF loss reduction of the substrate by suppressing a parasitic surface conduction.

Claims (21)

1. A high-resistivity silicon substrate ( 100 ) with a reduced radio frequency (RF) loss for a radio frequency integrated passive device, the substrate comprising:

a bulk zone ( 110 ) comprising high-resistivity bulk silicon; and

a preserved sub-surface lattice damage zone ( 120 b ), which is processed into a front surface ( 122 ) of the substrate,

wherein the lattice damage zone forms the front surface,

wherein the front surface is a chemical-mechanical planarization-polished front surface,

wherein the lattice damage zone comprises fractured silicon above the bulk zone, and

wherein the lattice damage zone suppresses a parasitic surface conduction to achieve the RF loss reduction of the substrate.

2. The substrate of claim 1 , wherein the front surface is structurally single crystal silicon.

3. The substrate of claim 1 , wherein the preserved lattice damage zone is processed mechanically by slicing ( 210 ), lapping ( 220 ), grinding ( 240 ), brush damaging ( 250 ), laser manipulation, or wet blasting ( 250 ).

4. The substrate of claim 1 , wherein the grinding is a rotational fixed abrasive grinding and/or the grinding is executed by a two-step grinding comprising a coarse grinding and a fine grinding.

5. The substrate of claim 1 , which comprises a polysilicon layer ( 130 ) on a top of the preserved lattice damage zone.

6. The substrate of claim 5 , wherein a thickness of the polysilicon layer is 0.2-8.0 μm.

7. The substrate of claim 5 , wherein the thickness of the polysilicon layer is 0.4-6.0 μm.

8. A method ( 200 ) for manufacturing the high-resistivity silicon substrate ( 100 ) with the reduced radio frequency (RF) loss of claim 1 for a radio frequency integrated passive device, the method comprising:

growing ( 204 ) a high-resistivity silicon;

processing ( 210 , 220 , 240 , 270 ) the grown silicon by slicing ( 210 ) a silicon wafer from the grown silicon and by thinning ( 220 , 240 ) the sliced silicon wafer, the processing achieves a lattice damage zone ( 120 a , 120 b ) comprising fractured silicon into a processed silicon wafer;

chemical-mechanical planarization-polishing ( 250 , 272 ) the processed silicon wafer for obtaining the substrate, which comprises a bulk zone ( 110 ) comprising high-resistivity bulk silicon;

preserving ( 260 , 274 ), by the chemical-mechanical planarization-polishing, at least a part ( 120 b ) of the lattice damage zone above the bulk zone so that the lattice damage zone forms a chemical-mechanical planarization-polished front surface of the substrate and comprises fractured silicon above the bulk zone; and

the lattice damage zone suppressing a parasitic surface conduction to achieve the RF loss reduction of the substrate.

9. A radio frequency integrated passive device comprising the high-resistivity silicon substrate ( 100 ) with a reduced radio frequency loss of claim 1 .

10. The substrate of claim 1 , wherein the front side is structurally single crystal silicon.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 9, 2015
From: HAAPALINNA, ATTE
To: OKMETIC OYJ
Reel/Frame 034670/0608 →
Priority Claims (1)
FI 20136180 · Nov 26, 2013 · national
Continuity (1)
Related Publication 20150145105A1 · May 28, 2015