IP Library Granted Patent US 7,616,077
Granted Patent B1
US 7,616,077 · App. 11/689,567 · Granted Nov 10, 2009

Microelectromechanical resonator and method for fabrication

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Quick Facts
Patent No.
US 7,616,077
App. No.
11/689,567
Granted
Nov 10, 2009
Kind
B1
Abstract

A method is disclosed for the robust fabrication of a microelectromechanical (MEM) resonator. In this method, a pattern of holes is formed in the resonator mass with the position, size and number of holes in the pattern being optimized to minimize an uncertainty Δf in the resonant frequency f 0 of the MEM resonator due to manufacturing process variations (e.g. edge bias). A number of different types of MEM resonators are disclosed which can be formed using this method, including capacitively transduced Lamé, wineglass and extensional resonators, and piezoelectric length-extensional resonators.

Claims (26)

1. A microelectromechanical (MEM) resonator, comprising:

a substrate;

a mass having a plurality of holes therein and suspended above the substrate by at least one anchor to oscillate at a resonant frequency f 0 , with every hole in the mass having a location at substantially the same distance from a center of the mass, and with every hole in the mass having a hole size which is substantially identical, and with the hole location and the hole size being defined to compensate, at least in part, for an uncertainty Δf in the resonant frequency f 0 ;

a first set of electrodes located proximate to the mass to electrically stimulate the mass to oscillate at the resonant frequency f 0 ; and

a second set of electrodes located proximate to the mass to sense the oscillation at the resonant frequency f 0 .

2. The MEM resonator of claim 1 wherein every hole is located symmetrically about an axis of displacement of the mass.

3. The MEM resonator of claim 1 wherein the at least one anchor comprises four anchors equally spaced about the mass.

4. The MEM resonator of claim 1 wherein the at least one anchor comprises a single anchor located beneath the center of the mass.

5. The MEM resonator of claim 1 wherein the at least one anchor comprises two anchors located on opposite sides of a rectangular mass.

6. The MEM resonator of claim 1 wherein the mass is square or circular.

7. The MEM resonator of claim 1 wherein all the holes are circular.

8. The MEM resonator of claim 1 wherein the uncertainty Δf in the resonant frequency f 0 is due to at least one uncertainty parameter selected from the group consisting of an edge bias of the mass, a variation in thickness of the mass, a misalignment of the at least one anchor with respect to an axis of symmetry of the mass, a value of Young's modulus for a material used to form the MEM resonator, a value of Poisson's ratio for the material used to form the MEM resonator, and a density of the material used to form the MEM resonator.

9. A microelectromechanical (MEM) resonator comprising:

a mass suspended above a substrate by at least one anchor and having a first set of holes which are all of a first size, and having a second set of holes which are all of a second size which is different from the first size, and with the sizes and locations of the first and second sets of holes being defined to provide an oscillation of the mass at a resonant frequency f 0 which is substantially independent of an edge bias in the MEM resonator;

a first set of electrodes located on the substrate to electrically stimulate the oscillation of the mass at the resonant frequency f 0 ; and

a second set of electrodes located on the substrate to sense the oscillation at the resonant frequency f 0 .

10. The MEM resonator of claim 9 wherein the first set of holes is rotated relative to the second set of holes by an angle which is substantially equal to 45 degrees.

11. The MEM resonator of claim 9 wherein the first set of holes is spaced at a first distance from a center of the mass which is different from a second distance from the center of the mass where the second set of holes is located.

12. The MEM resonator of claim 9 wherein all the holes in the first and second sets of holes are circular in shape.

13. The MEM resonator of claim 9 wherein all the holes in the first and second sets of holes are located symmetrically about an axis of displacement of the mass.

14. The MEM resonator of claim 9 wherein the first set of holes consists of four holes, and the second set of holes consists of four holes.

15. The MEM resonator of claim 9 wherein the at least one anchor comprises a single anchor located beneath the center of the mass to suspend the mass above the substrate.

16. The MEM resonator of claim 9 wherein the at least one anchor comprises four anchors equally spaced about a periphery of the mass to suspend the mass above the substrate.

17. The MEM resonator of claim 9 wherein the mass is square, and the at least one anchor comprises three anchors connected to the square mass at three corners thereof, with a fourth corner of the square mass being connected by a coupler to another square mass which is suspended above the substrate with the second set of electrodes being formed thereabout.

18. The MEM resonator of claim 9 wherein the mass is circular or square in shape.

19. The MEM resonator of claim 9 wherein the MEM resonator is selected from the group of MEM resonators consisting of Lamé resonators, wineglass resonators and extensional resonators.

Assignments (3)
CHANGE OF NAME Recorded Sep 26, 2018
From: SANDIA CORPORATION
To: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
Reel/Frame 047639/0437 →
CONFIRMATORY LICENSE Recorded Aug 2, 2007
From: SANDIA CORPORATION
To: ENERGY, U.S. DEPARTMENT OF
Reel/Frame 019647/0770 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 19, 2007
From: WITTWER, JONATHAN W.; OLSSON, ROY H.
To: SANIDA CORPORATION, OPERATOR OF SANDIA, NATIONAL LABORATORIES
Reel/Frame 019191/0331 →