IP Library Granted Patent US 12,732,155
Granted Patent B1
US 12,732,155 · App. 18/991,420 · Granted Sep 8, 2026

Temperature stable MEMS resonator

Inventors: Paul M. Hagelin (Saratoga, CA); Charles I. Grosjean (Los Gatos, CA)
Assignee: SiTime Corporation
H03H9/02448H02N1/00H03B5/30H03B5/32H03H3/0072H03H3/0073H03H3/0076H03H9/02244H03H9/02433H03H9/125H03H9/21H03H9/2405H03H9/2468H03H9/2484H10N30/01H10N30/04H03H2009/02251H03H2009/02283H03H2009/02291H03H2009/02299H03H2009/02322H03H2009/0233H03H2009/02496H03H2009/155Y10T29/42Y10T29/49002Y10T29/49005Y10T29/4902Y10T29/4908
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Quick Facts
Patent No.
US 12,732,155
App. No.
18/991,420
Granted
Sep 8, 2026
Kind
B1
Abstract

A resonant member of a MEMS resonator oscillates in a mechanical resonance mode that produces non-uniform regional stresses such that a first level of mechanical stress in a first region of the resonant member is higher than a second level of mechanical stress in a second region of the resonant member. A plurality of openings within a surface of the resonant member are disposed more densely within the first region than the second region and at least partly filled with a compensating material that reduces temperature dependence of the resonant frequency corresponding to the mechanical resonance mode.

Claims (53)

1 . An integrated circuit comprising:

an anchor;

a first beam and a second beam each extending in parallel along a length dimension “L,” each of the first beam and the second beam having a first end and a swinging end, each of the first beam and the second beam also having a second dimension that is perpendicular to the length dimension;

a base portion mechanically coupling the anchor and the first end of each beam;

wherein the anchor is positioned in between the first beam and the second beam at a position, relative to the length dimension “L” of each of the first beam and the second beam, that is intermediate to the first end and the swinging end; and

wherein each of the first beam and the second beam comprises layers, the layers including a silicon crystal layer and a silicon dioxide layer;

wherein the silicon crystal layer has a first temperature coefficient of Young's Modulus (TCE) at an operating temperature and the silicon dioxide layer has a second TCE that is opposite in sign to the first TCE at the operating temperature;

wherein the silicon dioxide layer of each of the first beam and the second beam is buried within the respective beam along the second dimension, such that each of the first beam and the second beam has at least one layer on each side of the silicon dioxide layer along the second dimension within the respective beam; and

wherein the second material is hermetically sealed in each of the first beam and the second beam relative to exterior surfaces of the respective first beam or the second beam.

2 . The integrated circuit of claim 1 wherein the second material is formed as a continuous layer in each of the first beam and the second beam, the continuous layer extending along the respective axis in a manner spanning no more than thirty percent of the length of the respective beam.

3 . An integrated circuit comprising:

a die;

a microelectromechanical systems (MEMS) resonator on the die;

the MEMS resonator comprising:

an anchor;

a first beam and a second beam each having a length that extends along a respective axis, a height perpendicular to the respective axis and a width perpendicular to the respective axis, each of the first beam and the second beam also having a first end and a swinging end; and

a base portion mechanically coupling the anchor and the first end of each beam;

wherein, for each one of the beams:

the one of the beams comprises discrete materials, including a first material and a second material;

the first material has a first temperature coefficient of Young's Modulus (TCE) at an operating temperature of the MEMS resonator and the second material has a second TCE that is opposite in sign to the first TCE at the operating temperature; and

the second material is buried within the one of the beams along at least two of the length, the height and the width of the respective beam; and

wherein the second material is formed as a continuous layer in each of the first beam and the second beam, the continuous layer extending along the respective axis in a manner spanning no more than thirty percent of the length of the respective beam.

4 . The integrated circuit of claim 3 wherein the anchor is positioned, along a dimension parallel to at least one of the respective axis, width or the height, that is in between the first beam and the second beam.

5 . The integrated circuit of claim 3 wherein the MEMS resonator is characterized by a thermal coefficient of frequency (TCF) and wherein, for each of the first beam and the second beam, the first material has a volume, relative to a volume of the second material, such that a temperature coefficient of stiffness of the first material and a temperature coefficient of the second material at least partially offset, and result in the TCF being less than |−5 ppm/° C.| over an intended operating temperature range of the MEMS resonator.

6 . The integrated circuit of claim 3 wherein the first material comprises crystal silicon.

7 . The integrated circuit of claim 6 wherein the second material comprises silicon dioxide.

8 . The integrated circuit of claim 3 wherein a volume of the second material in each of the first beam and the second beam is no more than forty percent of a volume of the first material in the respective first beam or second beam.

9 . The integrated circuit of claim 3 wherein the second material is hermetically sealed in each of the first beam and the second beam relative to exterior surfaces of the respective first beam or the second beam.

10 . The integrated circuit of claim 9 wherein the second material is hermetically sealed within the respective beam by, at least in part, a capping material comprising silicon nitride.

11 . The integrated circuit of claim 3 wherein the first beam, the second beam and the base are coupled to each other so as to form a tuning fork arrangement.

12 . The integrated circuit of claim 3 wherein:

the first material of each of the first beam and the second beam is formed to have a recess defined at an exterior surface of the respective beam, the recess extending along the respective axis;

the second material is formed so as to occupy the recess of each of the first beam and the second beam; and

a surface of the second material is substantially coplanar and contiguous with an exterior surface of the respective beam.

13 . An integrated circuit comprising:

a die;

a microelectromechanical systems (MEMS) resonator on the die;

the MEMS resonator comprising:

an anchor;

a first beam and a second beam each having a length that extends along a respective axis, a height perpendicular to the respective axis and a width perpendicular to the respective axis, each of the first beam and the second beam also having a first end and a swinging end; and

a base portion mechanically coupling the anchor and the first end of each beam;

wherein, for each one of the beams:

the one of the beams comprises discrete materials, including a crystal-silicon-based-material and a second material;

the crystal-silicon-based-material has a first temperature coefficient of Young's Modulus (TCE) at an operating temperature of the MEMS resonator and the second material has a second TCE that is opposite in sign to the first TCE at the operating temperature; and

the second material is buried within the one of the beams along at least two of the length, the height and the width of the respective beam; and

wherein second material is hermetically sealed in each of the first beam and the second beam relative to exterior surfaces of the respective first beam or the second beam.

14 . The integrated circuit of claim 13 wherein the second material is formed as a continuous layer in each of the first beam and the second beam, the continuous layer extending along the respective axis in a manner spanning no more than thirty percent of the length of the respective beam.

15 . The integrated circuit of claim 13 wherein the MEMS resonator is characterized by a thermal coefficient of frequency (TCF) and wherein, for each of the first beam and the second beam, the crystal-silicon-based material has a volume, relative to a volume of the second material, such that a temperature coefficient of stiffness of thee crystal-silicon-based material and a temperature coefficient of the second material at least partially offset, and result in the TCF being less than |−5 ppm/° C.| over an intended operating temperature range of the MEMS resonator.

16 . The integrated circuit of claim 15 wherein the second material is formed to occupy one or more layers defined within each of the first beam and the second beam, in which each layer of the one or more layers has a thickness, in the direction of one of the height or the width, that is less than 0.6 microns.

17 . The integrated circuit of claim 13 wherein the second material comprises silicon dioxide.

18 . The integrated circuit of claim 13 wherein a volume of the second material in each of the first beam and the second beam is no more than forty percent of a volume of the crystal-silicon-based material in the respective first beam or second beam.

19 . The integrated circuit of claim 13 wherein the second material is hermetically sealed within the respective beam by, at least in part, a capping material comprising silicon nitride.

20 . The integrated circuit of claim 13 wherein the first beam, the second beam and the base are coupled to each other so as to form a tuning fork arrangement.

Assignments (2)
SECURITY INTEREST Recorded Jun 30, 2026
From: SITIME CORPORATION
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 075862/0712 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2024
From: HAGELIN, PAUL MERRITH; GROSJEAN, CHARLES
To: SITIME CORPORATION
Reel/Frame 069659/0325 →
Continuity (10)
Continuation 18449089 · Aug 14, 2023
Continuation 17901748 · Sep 1, 2022
Division 17363386 · Jun 30, 2021
Division 16702765 · Dec 4, 2019
Division 15916088 · Mar 8, 2018
Division 15387375 · Dec 21, 2016
Division 14863337 · Sep 23, 2015
Division 14191939 · Feb 27, 2014
Division 13562684 · Jul 31, 2012
Division 11963709 · Dec 21, 2007
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