EP1514122A2

Method of manufacturing of a monolithic silicon acceleration sensor

Abstract

A method of manufacturing a monolithic silicon acceleration sensor is disclosed. The monolithic silicon acceleration sensor includes one or more sensor cells, each sensor cell having an inertial mass positioned by beam members fixed to a silicon support structure. According to the method, a sandwiched etch-stop layer is formed. First sections of the inertia mass and beam members are also formed. In addition, a second section of the inertial mass is formed. Further, an inertial mass positioned by beam members fixed to a silicon support structure is formed. Also, a first cover plate structure is bonded to a first surface of the silicon support structure.

Term

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Projected expiry passed 13 June 2023, 3.3 years ago.

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26 claims: 16 independent, 10 dependent

  1. 1
    Claims of equivalent WO 03107014 A2 Claims 1. A method of manufacturing a monolithic silicon acceleration sensor comprising the step of forming at least one silicon acceleration sensor cell, characterized in that the step of forming a sensor cell comprises the steps of:(a) forming a layered sandwich of an etch-stop layer between a first wafer section of electrically conductive silicon having an exposed first surface and a second wafer section of electrically conductive silicon having an exposed second surface;(b) forming a second section of a movable silicon inertial mass by etching a rectangular frame-shaped channel in the second wafer section of silicon from the exposed second surface extending to the etch-stop layer;(c) forming a first section of the inertial mass by etching a U-shaped channel and a bar-shaped channel in the first wafer section of silicon from the exposed first surface extending to the etch-stop layer, positioning the bar-shaped channel and the U-shaped channel in the first wafer section of silicon to be in horizontal alignment with, and of equal planar dimensions to the rectangular frame-shaped channel in the second wafer section of silicon;(d) stripping the etch-stop layer that is exposed by the etched frame-shaped channel, the etched U-shaped channel, and the etched bar-shaped channel, thereby creating a rectangular parallel piped-shaped inertial mass having a first and a second exposed surface, the inertial mass positioned by beam members fixed to a silicon support structure having a first and a second exposed surface;and (e) providing a means for detecting movement of the inertial mass.
  2. 9
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-8, characterized in that:(a) the step of forming the second section of an inertial mass is by dry etching a rectangular frame-shaped channel in the second wafer section of silicon extending from the exposed second surface to the etch-stop layer, the rectangular frame-shaped channel having a major and a minor dimension;and (b) the step of forming the first section of an inertial mass comprises the steps of dry etching U-shaped channel and a bar-shaped channel having a long dimension in the first wafer section of silicon, the channel extending from the exposed first surface to the etch-stop layer, the long dimension of the bar-shaped channel is aligned with the major dimension of the rectangular frame-shaped channel in the second wafer section of silicon, thus providing the capability of increasing the inertial mass by an increase in the major dimension without changing the inertial balance in the plane normal to the major dimension.
  3. 10
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-8, characterized in that the step of forming a second section of the inertial mass is by dry etching a square frame-shaped channel extending from the exposed second surface to the etch-stop layer, the square frame-shape channel having inside dimensions substantially equal to the thickness of the layered sandwich, so that a cube shaped inertial mass positioned by beam members is formed.
  4. 11
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-10, characterized in that the method further comprises the steps of:(f) adjusting the thickness of the beam members by adjusting the thickness the first wafer section of silicon;(g) adjusting the width of the beam members by adjusting the spatial separation between the U-shaped channel and the bar-shaped channel;and (h) adjusting the length of the beam members by adjusting the width of the etched channels.
  5. 14
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-13, characterized in that:(a) the step of forming the second section of the inertial mass further comprises creating a rectangular second depression on the exposed second surface of the second wafer section of silicon prior to etching the rectangular frame-shaped channel within the second depression;and (b) the step of forming the first section of the inertial mass further comprises creating a rectangular first depression on the exposed first surface of the first wafer section of silicon prior to etching the U-shaped channel and the bar-shaped channel within the first depression.
  6. 16
    A method of manufacturing of a monolithic silicon acceleration sensor according to any of the claims 1-15, characterized in that the step of forming the first section of the inertial mass comprises the steps of:(a) positioning the bar-shaped channel across the open top of the U-shaped channel and centering the bar-shaped channel within the outside dimension of the open top of the U-shaped channel;(b) extending the length of the bar-shaped channel to equal t he entire outside width of the open top of the U-shaped channel;and (c) spatially separating the ends of the bar-shaped channel from the open top of the U-shaped channel, so that the inertial mass is positioned by torsion beam members.
  7. 17
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-15, characterized in that the step of forming the first section of the inertial mass comprises the steps of:(a) positioning the bar-shaped channel across the open top of the U-shaped channel and centering the bar-shaped channel within the inside dimension of the open top of the U-shaped channel;(b) extending the length of the bar-shaped channel to be less than the inside width of the open top of the U-shaped channel;and (c) spatially separating the ends of the bar-shaped channel from the inside open top of the U-shaped channel, so that the silicon inertial mass is positioned by cantilever beam members.
  8. 18
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-17, characterized in that the step of providing a means to detect movement of the inertial mass comprises the steps of:(a) measuring the capacitance between the first surface of the inertial mass and a first electrically conductive layer spaced from the first surface of the inertial mass, insulated from and fixed to the silicon support structure;and (b) measuring the capacitance between the second surface of the inertial mass and a second electrically conductive layer spaced from the second surface of the inertial mass, insulated from and fixed to the silicon support structure.
  9. 19
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-17, characterized in that the step of providing a means to detect movement of the inertial mass comprises the steps of:(a) growing a first layer of silicon dioxide on an exposed first surface of an electrically conductive third wafer section of silicon and a first layer of silicon dioxide on an exposed first surface of an electrically conductive fourth wafer section of silicon, the third and fourth silicon wafer sections having a second surface opposite the exposed first surface;(b) masking the first silicon dioxide layer on the third and on the fourth silicon wafer sections so that the silicon dioxide surface is exposed except for a small post-shaped pattern such that the post-shaped pattern is positioned to coincide with the location of the inertial mass;(c) stripping the silicon dioxide layer from the exposed silicon dioxide surfaces so that exposed areas of silicon are formed except for a post-shaped pattern of masked silicon dioxide on the first surface of the third and the fourth silicon wafer sections;(d) etching the exposed areas of the third and the fourth silicon wafer sections to a depth of about 75 microns so that a small mesa of silicon is formed on the first surface of the third silicon wafer section beneath the post-shaped pattern and on the first surface of the fourth silicon wafer section beneath the post-shaped pattern;(e) forming trenches on the first surface of the third and the fourth silicon wafer sections in a rectangular crosshatched pattern to a depth of about half of the third and fourth silicon wafer section thickness such that an enclosed rectangle contains at lease one silicon mesa and is positioned to coincide with the position of the inertial mass;(f) melting a layer of glass over the first surface of the third and the fourth silicon wafer sections having the silicon mesa and trenches, such that the trenches are filled with glass and the silicon mesas are covered with glass;(g) grinding the glass flat so that a planar glass surface is formed on the first surface of the third and the fourth silicon wafer sections, the planar glass surface having a silicon mesa pattern exposed;(h) back grinding the second surface of the third and the fourth silicon wafer sections so that the glass-filled trenches are exposed and electrical isolation is formed within the rectangular crosshatched pattern, thereby forming a first cover plate structure from the third silicon wafer section and a second cover plate structure from the fourth silicon wafer section;(i) metallizing a rectangular pattern layer on the glass first surface of the first and second cover plate structures so that the metallic layer is electrically connected to the opposite silicon surface by the silicon mesa, and sized and positioned to coincide with the first and second surfaces of the inertial mass;(j) bonding the glass surface of the first cover plate structure to the first surface of the silicon support structure so that the metallized rectangular pattern layer is coincident with and spaced from the first surface of the inertial mass whereby a first variable capacitor is formed;(k) bonding the glass surface of the second cover plate structure to the second surface of the silicon support structure so that the metallized rectangular pattern layer is coincident with and spaced from the second surface of the inertial mass whereby a second variable capacitor is formed;and (1) providing means for electrical connecting the silicon wafer section of the first cover plate structure, the silicon support structure, and the silicon wafer section of the second cover plate structure to electronic circuitry for measuring the value of the first variable capacitor and the value of the second variable capacitor.
  10. 20
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-17, characterized in that the step of providing a means to detect movement of the inertial mass comprises the steps of:(a) forming a small hole in a first glass layer and in a second glass layer at positions that coincide with the locations of the inertial mass, each glass layer having a first surface and a second surface;(b) metallizing the surfaces of the small holes;(c) metallizing a first rectangular layer on the first surface of the first glass layer and on the first surface of the second glass layer so that each metallic rectangular layer is electrically connected to the opposite second surface of the first and second glass layers by the metallized hole, and the metallic layers being sized and positioned to coincide with the first and second surfaces of the inertial mass;(d) metallizing an electrical bonding pad on the second surface of the first and second glass layers so that each bonding pad is electrically connected to a corresponding rectangular metallic layer on the first surface of the first and second glass layers by the metallized holes;(e) bonding the first surface of the first glass layer to the first surface of the silicon support structure so that the metallized rectangular layer is coincident with and spaced from the first surface of the inertial mass whereby a first variable capacitor is formed;(f) bonding the first surface of the second glass layer to the second surface of the silicon support structure so that the metallized rectangular layer is coincident with and spaced from the second surface of the inertial mass whereby a second variable capacitor is formed;and (g) providing means for electrical connecting the electrical bonding pad on the first glass layer, the silicon support structure, and the electrical bonding pad on the second glass layer to electronic circuitry for measuring the value of the first variable capacitor and the value of the second variable capacitor.
  11. 21
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-17, characterized in that the step of providing a means to detect movement of the inertial mass comprises the steps of:(a) attaching piezoresistive elements to the beam members;and (b) providing electrical connections from the piezoresistive elements to resistance measuring circuitry to determine the amount of twisting or bending of the beam members due to movement of the inertial mass in response to acceleration.
  12. 22
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-21, characterized in that the method further comprises the step of electrically interconnecting the first and second wafer sections of silicon by depositing a layer of conductive polysilicon over the surface of the etched structure, following the step of stripping the etch-stop.
  13. 23
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-22, characterized in that the method further comprises the step of forming a single monolithic silicon acceleration sensor cell for sensing planar acceleration.
  14. 24
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-23, characterized in that the method further comprises the steps of:(a) forming a monolithic sensor comprising a first and a second silicon acceleration sensor cell for sensing two axes acceleration;and (b) orienting the second sensor cell at a 90 degree or a 180 degree angle to the first sensor cell when viewing the first surface of the inertial masses, using the beam members as an angular reference.
  15. 25
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-23, characterized in that the method further comprises the steps of:(a) forming a monolithic sensor comprising a first, second, and a third silicon acceleration sensor cell for sensing three axes acceleration;(b) orienting the second sensor cell at a 90 degree angle to the first sensor cell when viewing the first surface of the inertial masses, using the beam members as an angular reference;and (c) orienting the third sensor cell at a 180 degree angle to the first sensor cell when viewing the first surface of the inertial masses, using the beam members as an angular reference.
  16. 26
    A method of manufacturing a monolithic silicon acceleration sensor according to any of the claims 1-23, characterized in that the method further comprises the steps of:(a) forming a monolithic comprising a first, second, third and a fourth silicon acceleration sensor cell for sensing three axes acceleration;(b) orienting the second sensor cell at a 90 degree angle to the first sensor cell when viewing the first surface of the inertial masses, using the beam members as an angular reference;(c) orienting the third sensor cell at a 180 degree angle to the first sensor cell when viewing the first surface of the inertial masses, using the beam members as an angular reference;and (d) orienting the fourth sensor cell at a 270 degree angle to the first sensor cell when viewing the first surface of the inertial masses, using the beam members as an angular reference.
Independent claims16