WO2019226958A1 - Capacitive sensor - Google Patents
Capacitive sensor Download PDFInfo
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- WO2019226958A1 WO2019226958A1 PCT/US2019/033855 US2019033855W WO2019226958A1 WO 2019226958 A1 WO2019226958 A1 WO 2019226958A1 US 2019033855 W US2019033855 W US 2019033855W WO 2019226958 A1 WO2019226958 A1 WO 2019226958A1
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- movement
- sensor according
- capacitive sensor
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Classifications
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01D—MEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
- G01D5/00—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable
- G01D5/12—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means
- G01D5/14—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage
- G01D5/24—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying capacitance
- G01D5/241—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying capacitance by relative movement of capacitor electrodes
- G01D5/2412—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying capacitance by relative movement of capacitor electrodes by varying overlap
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01H—MEASUREMENT OF MECHANICAL VIBRATIONS OR ULTRASONIC, SONIC OR INFRASONIC WAVES
- G01H11/00—Measuring mechanical vibrations or ultrasonic, sonic or infrasonic waves by detecting changes in electric or magnetic properties
- G01H11/06—Measuring mechanical vibrations or ultrasonic, sonic or infrasonic waves by detecting changes in electric or magnetic properties by electric means
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R27/00—Arrangements for measuring resistance, reactance, impedance, or electric characteristics derived therefrom
- G01R27/02—Measuring real or complex resistance, reactance, impedance, or other two-pole characteristics derived therefrom, e.g. time constant
- G01R27/26—Measuring inductance or capacitance; Measuring quality factor, e.g. by using the resonance method; Measuring loss factor; Measuring dielectric constants ; Measuring impedance or related variables
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/03—Arrangements for converting the position or the displacement of a member into a coded form
- G06F3/041—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means
- G06F3/044—Digitisers, e.g. for touch screens or touch pads, characterised by the transducing means by capacitive means
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- H—ELECTRICITY
- H03—ELECTRONIC CIRCUITRY
- H03K—PULSE TECHNIQUE
- H03K17/00—Electronic switching or gating, i.e. not by contact-making and –breaking
- H03K17/94—Electronic switching or gating, i.e. not by contact-making and –breaking characterised by the way in which the control signals are generated
- H03K17/945—Proximity switches
- H03K17/955—Proximity switches using a capacitive detector
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04R—LOUDSPEAKERS, MICROPHONES, GRAMOPHONE PICK-UPS OR LIKE ACOUSTIC ELECTROMECHANICAL TRANSDUCERS; ELECTRIC HEARING AIDS; PUBLIC ADDRESS SYSTEMS
- H04R19/00—Electrostatic transducers
- H04R19/04—Microphones
Definitions
- the present technology relates to the field of capacitive sensors.
- an electrostatic sensor has two electrodes
- changes in the position of the moving electrode will typically result in a change in the electrostatic potential energy.
- the effective force applied by the electric field will be equal to the derivative of this potential energy with respect to the position of the moving electrode.
- one may incorporate an additional fixed electrode such that the total potential energy of the system remains roughly constant with changes in the position of the moving electrode. While the total potential energy is nearly constant, resulting in a small electrostatic force and corresponding stiffness, the two fixed electrodes will experience dissimilar charges with changes in position of the moving electrode. Sensing these two fixed electrodes separately provides a sensor with greatly reduced influence of electrostatic forces on its motion.
- Figures 1A-1D show conventional capacitive sensing schemes.
- Figure 1A shows parallel plates separated by a gap that varies with acoustic pressure.
- Figure 1B shows parallel plates separated by a gap, and shows overlap in a plane parallel to the plates varies with acoustic pressure.
- Figure 1C shows a triplet of parallel plates, in which a distance between the central plate and the respective outer plates varies with acoustic pressure.
- Figure 1D shows a triplet of parallel plates, in which one plate moves parallel to the plane of the plates in response to acoustic pressure, which causes differential overlap of the other two plates which are adjacent and coplanar, and separated by a gap.
- Figure 1 Four common configurations are shown in Figure 1 [10].
- the two shown on the left in Figures 1A and 1B, are composed of two electrodes and those on the right in Figures 1C and 1D contain three electrodes.
- the electrodes move transverse to their parallel planes, while in Figures 1B and 1D, the motion is parallel to the electrode planes.
- the configuration of Figure 1A is by far the most common in acoustic sensors with the moving electrode comprising a pressure-sensing diaphragm.
- the effective electrostatic force is, ⁇
- the force is independent of x and also acts to pull the moving electrode toward its nominal position.
- the effective stiffness is zero, kb » 0.
- This configuration can be realized using interdigitated fingers or fins and has been successfully incorporated in some acoustic pressure sensors [12]. It should be noted that a more detailed electrostatic analysis of this configuration shows that when x is not small relative to W the electrostatic stiffness becomes positive [13]. While instability is avoided, the electrostatic force can impede the electrode motion.
- a dynamic capacitive sensor configuration is provided that is intended to impose minimal force and resistance to motion on the moving electrode.
- the aim is to enable the use of moving electrodes having arbitrary levels of compliance without suffering the adverse effects of large bias voltages such as pull-in instability.
- This configuration facilitates incorporation of highly compliant and thin electrode materials that present the least possible resistance to motion. This type of material is particularly useful for sensing sound. Measured results show that for the highly compliant acoustic sensor design examined here, a large bias voltage of 400 volts can be applied without influencing its motion.
- the electrical sensitivity to sound is found to be approximately 0.5 volts/pascal, two orders of magnitude greater than typical acoustic sensors.
- One aspect of the present technology seeks to provide electrode designs for capacitive sensors that can minimize the effects of electrostatic stiffness on the microphone performance. If this can be accomplished, the moving electrode can be designed for maximum performance without being limited by constraints resulting from electrostatic forces.
- Another aspect of the present technology seeks to provide electrode designs which are stable under all operating conditions.
- the electrode arrangement described herein achieves the goals of maintaining nearly constant potential energy and guaranteed stability.
- a further aspect of the present technology provides a microphone design where a moving, sensing electrode has as little mechanical stiffness and mass as possible in order to properly respond to the minute pressure and air velocityfluctuations in a sound field.
- a lightweight, compliant capacitive electrode configuration is provided that is intended to respond readily to acoustic pressure.
- the preferred embodiment is a microphone, wherein the moving element responds to changes in air pressure or air flow, and the position of the moving element is sensed.
- the sensor design is not limited to microphones, and is more generally useful as an accelerometer, MEMS gyroscope, displacement sensor, vibrometer, shock sensor, etc.
- the basic design provides a pair of fixed electrodes maintained at virtual ground by a negative feedback transimpedance amplifier, this is not a limit of the technology. For example, if the voltage potential of one of the electrode surfaces is maintained at a different voltage than the other, the electric field experienced by the charged moving element will then be asymmetric, and rather than a normal force that acts parallel to the elongated axis of the element, a displacement forced will exist.
- the moving element is intentionally oscillated by a time-varying electrostatic field developed by the electrodes.
- a chemi-selective sensor is possible if the diaphragm or fiber is coated with a chemi-specific material. As a species of interest is absorbed on the moving element, its mass changes, and this in turn alters its response to the oscillating electric field.
- the moving element is thermally responsive, and for example changes in mechanical properties or dimensions. This in turn will alter the frequency and/or linear or non-linear response of the charged element to a perturbation, such as an oscillating electric field.
- the repositioning of the nominal state of the moving charged element may also affect other sensor properties.
- the charged element may be situated in an inhomogeneous medium. Therefore, a movement of the charged element will result in a different environment of operation.
- more than three electrodes may interact with a single moving element. In the case of a diaphragm, this may induce or sense twist. In the case of a fiber or filament, of other structure suspended for movement along two axes, the larger number of electrodes may detect the various axes of movement.
- more than one moving element is provided. These may interact with the electrodes and each other in various ways. For example, these can sense movement or effects along different axes (multi-axis sensor), and detect or process spatial variations in an exciting condition.
- the presumption of no elongation of the charged element due to voltage potential with respect to the electrodes is not strictly valid. Therefore, the length of the element, and its distance from the electrodes, will vary with applied voltage. Typically, one does not wish the sensor to experience pull-in, but in specific sensor types, this is exactly the effect sought, since it locks the moving element in place.
- a sensor comprising: an element configured to be charged, disposed proximate to at least two electrodes within an electrical field, the element interacting with each of the at least two electrodes to produce a composite force within the element that is at least 95% tensile, such that the element when displaced from the nominal position by a condition, induces a charge redistribution on the at least two electrodes corresponding to a magnitude of the condition.
- the at least two electrically isolated and separated electrodes may comprise a pair of fixed conductors, separated by a linear gap, each of the pair of fixed conductors may be maintained at a respective electric potential, and sensing an electrical field in a space above the pair of fixed conductors based on charge redistribution.
- the axis preferably has a vector component directed across the linear gap, wherein the net force on the charged element is insensitive to a state of displacement of the charged element in response to the sensed condition.
- the charged element may be responsive to acoustic vibrations, and the sensed perturbation quantitatively represents the acoustic vibrations.
- the charged element may have an elongated axis, being suspended from one end, having a restoring force which tends to return the charged element to a nominal position, and in the nominal position a free end of the charged element being proximate to the at least two electrically isolated and separated electrodes.
- a vector of the net force between the charged element and the at least two electrically isolated and separated electrodes may deviate from the elongated axis by less than 5 degrees, e.g., 4 degrees, 3 degrees, 2 degrees, 1 degree, etc.
- the displaceable element is unsupported on at least one edge.
- the displaceable element comprises a metallic or metallized polymer diaphragm having a thickness of less than about 10 ⁇ m; a fiber; a mesh; at least one of a carbon nanotube and a graphene sheet; and/or an electret, a thin metal sheet, polysilicon or any doped semiconductor.
- the displaceable element may be configured to displace along two different sensing axes, and the at least two conductors comprises at least three conductors.
- the displaceable element may comprise a diaphragm, and the at least two fixed conductors be together configured such that a change in an electric potential difference between the diaphragm and either of the at least two fixed conductors does not substantially displace or alter an effective stiffness of the diaphragm with respect to the axis of displacement.
- the capacitive sensor may further comprise a respective transimpedance amplifier configured to produce an output signal from each respective conductor.
- the displaceable element may comprise a micromachined silicon diaphragm having opposite sides which are sufficiently isolated to maintain a pressure difference across the diaphragm, further comprising a housing configured to selectively define at least one path for a fluid medium from a respective environmental port to a respective side of the micromachined silicon diaphragm, to selectively alter the pressure on the respective side of the micromachined silicon diaphragm.
- the deflectable element may have a movement dynamically responsive to changes in inertial state.
- the deflectable element may have a movement dynamically responsive to aerodynamic influences.
- the deflectable element may have a movement dynamically responsive to a chemical or biochemical process.
- a potential between the displaceable element and at least one of the conductors may be at least 1 V, e.g., 3V, 5V, 10V, 15V, 20V, 30V, 50V, 100V, 200V, 300V, 400V, or 500V.
- the electric field between the displaceable element and at least one of the conductors is at least 0.1 V/mm, e.g., 0.5V/mm, 1V/mm, 2V/mm, 3V/mm, 4V/mm, 5V/mm, 10V/mm, 25V/mm, 50V/mm, 75V/mm, 100V/mm, 200V/mm, 300V/mm, 400V/mm, 500V/mm, 750V/mm, 1000V/mm, 1500V/mm, 2000V/mm, 2500V/mm, etc.
- the potential may be established at the dielectric strength of the isolating medium.
- air has a dielectric strength of about 3000V/mm.
- a capacitive sensor comprising: a pair of coplanar surfaces, separated by a gap; a diaphragm, disposed in a plane perpendicular to the coplanar surfaces, and configured to move along an axis perpendicular to the gap and parallel to the coplanar surfaces, the diaphragm and the pair of coplanar surfaces being together configured such that a voltage difference between the conductive diaphragm and either of the pair of coplanar conductive surfaces does not substantially deflect or alter an effective stiffness of the diaphragm; and a set of electrodes, in electrical communication with each of the pair of coplanar surfaces and the diaphragm, configured to determine a differential charge induced between the pair of coplanar surfaces by a potential of the diaphragm.
- It is also an object to provide a method of sensing a vibration or sound comprising: providing a pair of coplanar surfaces, separated by a gap, and a diaphragm, disposed in a plane perpendicular to the coplanar surfaces, configured to flex along an axis perpendicular to the gap and parallel to the coplanar surfaces; inducing a voltage potential on the diaphragm with respect to the pair of coplanar surfaces; and sensing a change in induced charge on the pair of coplanar surfaces resulting from flexion of the diaphragm along the perpendicular axis, wherein the diaphragm and the pair of coplanar surfaces are together configured such that the voltage potential does not substantially deflect or alter an effective stiffness of the diaphragm.
- the sensor may further comprise a transimpedance amplifier configured to amplify the differential charge.
- a potential at each of the coplanar surfaces may be maintained at ground potential by a respective transimpedance amplifier while a change in charge is induced on the respective coplanar surfaces by a movement of the diaphragm.
- the diaphragm is preferably configured to oscillate, e.g., in response to acoustic vibrations, e.g., sounds produced by human speech, or electric field variations, though it may act as an electrometer, accelerometer, shock sensor, flow sensor, or other type of electrical or mechanical sensor.
- acoustic vibrations e.g., sounds produced by human speech, or electric field variations
- the diaphragm may have a movement which approximates an air movement within a sound field.
- the diaphragm has a lowest resonant frequency of movement, and may be configured to have a velocity of movement in response to a movement of air within a sound field having a frequency above the lowest resonant frequency approximately in-phase with an acoustic velocity of the acoustic waves.
- the lowest resonant frequency may be ⁇ 250 Hz, ⁇ 200 Hz, ⁇ 150 Hz, ⁇ 100 Hz, ⁇ 80Hz, ⁇ 50 Hz, ⁇ 35 Hz, ⁇ 24 Hz, ⁇ 20 Hz, ⁇ 15 Hz, or ⁇ 10 Hz, for example.
- a potential between the diaphragm and at least one of the coplanar surfaces may be > 400 V, >200 V, > 100V, >50V, >24V, >12V, > 10V, >6V, or >5V, for example.
- a capacitive sensor comprising at least two fixed conductive surfaces, separated by at least one non-conductive gap, each having an associated electrostatic field, and together causing a composite force vector; and a deflectable element configured to move along an axis perpendicular to the composite force vector, having an amplitude of movement corresponding to a sensed condition, the element being configured to have an electrostatic interaction with the associated electrostatic field of each of the pair of fixed conductive surfaces, wherein over a range of the movement of the element along the axis, the composite force vector does not substantially alter a deflection of the deflectable element.
- the capacitive sensor may be a microphone, and the sensed condition comprise acoustic waves.
- the deflectable element may comprise a diaphragm, e.g., a cantilever supported diaphragm, a diaphragm or beam supported on opposed edges (and free to flex between the supports), a perforated diaphragm, a solid diaphragm, or a metallized polymer diaphragm.
- the deflectable element may comprise a fiber, a fiber mesh, a fiber mat, or a metallized electrospun fiber.
- the deflectable element may have a solid edge, e.g., an intrinsic part of a mechanical diaphragm, or a fiber mesh having a solid border element.
- a moving electrode may be provided that represents a beam or plate supported on opposite ends with two free edges. These two edges may be adjacent to pairs of fixed electrodes, similar to those shown in Figure 2.
- This configuration looks a lot like a ribbon microphone, allows capacitive transduction rather than electrodynamic, as in all ribbon microphones. Using capacitive transduction enables miniaturization, which is extremely difficult with electrodynamic transduction.
- the deflectable element may be configured to oscillate in response to acoustic vibrations.
- the deflectable element may be configured to deflect in response to vibrations or acoustic waves along a single axis, along two axes, or have a greater number of degrees of freedom (e.g., rotational, internal vibrations and harmonics, flexion, etc.).
- the at least two fixed conductive surfaces may be coplanar or reside in different planes.
- the at least two fixed conductive surfaces may comprise at least three conductive surfaces.
- the deflectable element may comprise a diaphragm, and the at least two fixed conductive surfaces be together configured such that a voltage difference between the diaphragm and either of the at least two fixed conductive surfaces does not substantially deflect or alter an effective stiffness of the diaphragm.
- the capacitive sensor may further comprise a set of electrodes, in electrical communication with each of the at least two pair of conductive surfaces, configured to determine a charge redistribution induced between the movement of the deflectable element.
- a respective transimpedance amplifier may be provided, configured to produce an output signal from each respective conductive surface.
- the capacitive sensor may have a housing configured to selectively direct acoustic vibrations from an environmental port to one side of the deflectable element, or to selectively direct acoustic vibrations from each of a pair of environmental ports to respective sides of the deflectable element.
- the housing may be configured to selectively provide a set of defined paths from a fluid medium from each of a pair of environmental ports to respective sides of the deflectable element.
- the deflectable element may have a movement which approximates an air movement within a sound field surrounding the deflectable element.
- the deflectable element may have a movement which corresponds to an inertial state of the deflectable element, i.e., acceleration, angular rotation, etc.
- the deflectable element may comprise a diaphragm having a thickness of less than about 10 ⁇ m, 7.5 ⁇ m, 5 ⁇ m, 3 ⁇ m, or 1 ⁇ m.
- the deflectable element may comprise a fiber having a diameter of about 1 ⁇ m, less than 800 nm, 750 nm, 700 nm, 600 nm, 550 nm, 500 nm, 400 nm, 300 nm, 250 nm, 225 nm, 200 nm, 175 nm.150 nm, 125 nm, 100 nm, 80 nm, 75 nm, 60 nm or 50 nm.
- the diaphragm or fiber may be metallized, for example with a coating of gold of ⁇ 100 nm, 90 nm, 80 nm, 75 nm, 70 nm, 60 nm, 50 nm, 40 nm, 30 nm, 25 nm, 20 nm, 15 nm, or 10 nm.
- the deflectable element has a lowest resonant frequency of movement, e.g., less than 250 Hz, 200 Hz, 175 Hz, 150 Hz, 125 Hz, 100 Hz, 80 Hz, 75 Hz, 70 Hz, 65 Hz, 60 Hz, 55 Hz, 50 Hz, 45 Hz, 40 Hz, 35 Hz, 30 Hz, 25 Hz, 20 Hz, 15 Hz, or 10 Hz.
- the deflectable element may be configured to move in response to changes in air pressure corresponding to acoustic waves within a sound field having a frequency above its lowest resonant frequency in-phase with an acoustic velocity of the acoustic waves.
- a potential between the deflectable element and at least one of the conductive surfaces may be at least 400 V, 300 V, 240 V, 200 V, 150 V, 120 V, 100 V, 75 V, 48 V, 24 V, 12 V, 10 V, 6 V, 5 V, 3.3 V, 3 V, 2.5 V, 2 V, 1.5 V, 1 V, or 0.5 V.
- the deflectable element may have a lowest resonant frequency of movement less than 250 Hz, and is configured to have a velocity which has a phase lag of less than 90 degrees of a movement of air in response to acoustic waves within a sound field having a frequency above the lowest resonant frequency.
- the deflectable element may have a lowest resonant frequency of movement less than 150 Hz, and is configured to have a velocity which has a phase lag of less than 90 degrees of a movement of air in response to acoustic waves within a sound field having a frequency above the lowest resonant frequency.
- the deflectable element may have a lowest resonant frequency of movement less than 80 Hz, and is configured to have a velocity which has a phase lag of less than 90 degrees of a movement of air in response to acoustic waves within a sound field having a frequency above the lowest resonant frequency.
- the deflectable element may have a lowest resonant frequency of movement less than 50 Hz, and is configured to have a velocity which has a phase lag of less than 90 degrees of a movement of air in response to acoustic waves within a sound field having a frequency above the lowest resonant frequency.
- the deflectable element may have a lowest resonant frequency of movement less than 25 Hz, and is configured to have a velocity which has a phase lag of less than 90 degrees of a movement of air in response to acoustic waves within a sound field having a frequency above the lowest resonant frequency.
- the deflectable element may have a lowest resonant frequency, and move with a phase lag of less than 90 degrees in response to pressure changes in air having a frequency above the lowest resonant frequency.
- a potential at each of the conductive surfaces may be maintained at ground potential by a respective transimpedance amplifier while a change in charge is induced on the respective conductive surfaces by a movement of the deflectable element.
- It is also an object to provide a method of sensing a vibration comprising: providing at least two separated conductive surfaces, and a deflectable element, having an axis of deflection perpendicular to a force on the deflectable element generated by the at least two separated conductive surfaces; inducing a voltage potential on the deflectable element with respect to the at least two conductive surfaces; and sensing a change in induced charge on the at least two conductive surfaces resulting from deflection of the deflectable element along the axis of deflection, wherein the force on the deflectable element generated by the at least two separated conductive surfaces does not substantially alter a deflection of the deflectable element.
- the change in induced charge may be sensed by at least one transimpedance amplifier.
- the deflectable element may have a movement in response to acoustic waves in air at standard temperature and pressure, and 20% relative humidity, which approximates an air movement within a sound field surrounding the deflectable element.
- the deflectable element may have a lowest resonant frequency, and moves with a phase lag of less than 90 degrees in response to an acoustic wave in air having a frequency above the lowest resonant frequency.
- the lowest resonant frequency is, for example, 250 Hz.
- the movement of the deflectable element may correspond to an external force, viscous drag, pressure differential, etc.
- the movement of the deflectable element may correspond to an external force, e.g., a change in stress or strain, expansion, contraction, swelling, heating, cooling, etc. of the deflectable element.
- a potential at each of the conductive surfaces may be maintained at ground potential by a respective transimpedance amplifier while the deflection causes a movement of the deflectable element to induce the change in charge on the respective conductive surfaces.
- It is a further object to provide a capacitive sensing method comprising: providing a sensor comprising at least two electrically isolated electrodes having an associated electrical field, and a charged element within the associated electrical field, having an axis of movement in response to a sensed condition which is orthogonal to an electrostatic force between the charged element and the at least two electrically isolated electrodes, and being mechanically unresponsive to a magnitude of the electrostatic force between the charged element and the at least two electrically isolated electrodes; inducing a movement of the charged element with respect to the at least two electrically isolated electrodes along the axis of movement; sensing an induced charge on each of the at least two electrically isolated electrodes as a result of the movement of the charged element; and generating a signal corresponding to the movement.
- the sensed condition may be sound.
- the charged element may be suspended from one end and have an elongated axis and has a restoring force which tends to return the charged element to a nominal position, and in the nominal position a free end of the charged element is proximate to the at least two electrically isolated electrodes, and the electrostatic force between the charged element and the at least two electrically isolated electrodes is parallel to the elongated axis.
- the charged element may have an elongated axis and be supported by an elastic cantilever, the elongated axis being parallel to the electrostatic force and directed at a gap between the at least two electrically isolated electrodes.
- Each of the at least two electrically isolated electrodes may exert a force component on the charged element along the axis of movement, wherein a superposition of the force components exerted on the charged element along the axis of movement cancels a net force along the axis of movement.
- the charged element may comprise a filament, having a diameter less than about 1 micron.
- the charged element may comprise a filament or conductive filament having a diameter less than about 550 nm.
- the movement in air may be in response to an acoustic vibration at frequencies above 250 Hz dominated by viscous drag.
- the charged element may comprise a conductive perforated plate having a cantilever support which supports movement of the conductive perforated plate only along the axis of movement.
- the charged element may have a movement in air in response to an acoustic vibration at frequencies above 100 Hz dominated by viscous drag.
- the charged element may have an elongated profile and an elongated axis perpendicular to the axis of movement, and a force component of the electrostatic force along the axis of movement is at least -18 dB, -20 dB, -24 dB, -28dB, -30dB, -33dB. -36dB, or -40dB lower than a force component of the electrostatic force along elongated axis.
- the at least two electrically isolated electrodes may be symmetric with respect to the charged element, and the signal be generated by providing a transimpedance amplifier for each respective electrode, and a movement of the charged element determined based on voltage differences in outputs of the respective transimpedance amplifiers.
- a wave e.g., a sound or vibration
- It is also an object to provide a sensor comprising a charged (or chargeable) element which is disposed within an electrical field having at least two electrodes, the charged or chargeable element interacting with each of the at least two electrodes to produce a composite force within the charged element that is tensile only does not have a deflection tendency from a nominal position of the charged element, such that the charged element when deflected from the nominal position induces a charge redistribution on the electrodes which can be sensed.
- the deflection may be caused by various effects.
- sound may act on the charged element to displace it in a movement pattern that corresponds to pressure variations or bulk flow patterns (e.g., viscous drag).
- the charged element may be, or may have a movement corresponding to a proof mass or inertial mass.
- the inertial mass has either a mechanical integration over time, or the output is electrically integrated over time, to determine the impulse magnitude.
- the charged element may be a microcantilever beam, which, for example, can sense asymmetric bending effects. For example, if one side of a beam is coated with a chemically responsive material, and the other is not, or one side is selectively exposed to a chemical to which it is responsive, the deflection may be measured.
- the low frequency response ( ⁇ 1 Hz or 0.1 Hz) of the device may be low or subject to noise, and therefore the charged element may be induced to vibrate. In this case, the vibration will act as a frequency modulation of the offset position of the charged element.
- the charged element may also act as a sensor for fluid dynamical properties of the medium in which it is immersed.
- a fiber for which fluid drag is a dominating factor in the response to bulk flow such as a submicron fiber
- a larger fiber is provided which is in a transition region range. Therefore, the movement of the fiber in response to a standardized vibration within the medium will alter based on properties of the medium. If the medium is homogeneous and constant temperature and pressure, changes in mass and/or viscosity will be reflected in the response of the charged element.
- an array of sensors may be provided.
- the array may sense spatial or volumetric differences in a condition, such as sound waves.
- the charged element may be directional, and as a result, spatial and volumetric sensors may produce information about propagation vectors, scattering, and other influences.
- the array of sensors may be configured or processed to null or cancel undesired signal components, and select or respond to desired signal components.
- the element may have a movement or deflection responsive to an acceleration, Coriolis force, asymmetric bending force, a chemical interaction of a medium and a surface of the element, a biological interaction of a medium and a surface of the element, or a chemisorptive interaction of a medium and a surface of the element, for example.
- the sensor may further comprise a mechanical integrator, wherein the element has a movement responsive to a shock.
- the time response may comprise a vibration frequency, a resonant frequency, or a phase delay.
- the overall sensor sensitivity can be expressed as a combination of the charge sensitivity, denoted by S Q in coulombs/meter, the electrical sensitivity, S e in volts/coulomb, and the mechanical sensitivity S m in meters/pascal.
- S Q charge sensitivity
- S e electrical sensitivity
- S m mechanical sensitivity
- the mechanical sensitivity of the displacement of the free end of the electrode in this idealized case can then be approximated by:
- Electrode 2 a 5 ⁇ m thick polyethylene terephthalate film, metallized with a thin layer of aluminum was used to create electrode 2 (Goodfellow.com part No.
- FIG. 1 shows a schematic representation for the characterization setup.
- Figure 5 shows a schematic representation for the characterization setup.
- the electrode motion was detected using a laser vibrometer.
- the sound field created by a loudspeaker was measured using a Bruel and Kjaer 4138 reference microphone.
- the electronic output was measured using charge/transimpedance amplifiers. All signals were recorded using a National Instruments PXI-1033 Data Acquisition System.
- Figures 6C and 6D show the output voltages produced by the detection circuits, employing simple transimpedance amplifiers, that respond to the charge on electrodes 1 and 3. These signals are seen to be roughly out of phase with each other as would be expected given that, when the moving electrode moves toward one of the fixed electrodes, it moves away from the other. One could then subtract the two outputs to obtain an improved detection with increased sensitivity.
- the output voltages have an amplitude of approximately 250 mV so that the difference output would have a sensitivity of approximately 0.5 volts/pascal.
- the DC bias voltage applied to electrode 2 is 400 volts for the data shown in Figures 6A-6D.
- the estimated charge sensitivity shown in Figure 4C is about nanoCoulombs/meter.
- the electrical sensitivity given in equation (15) depends on the effective capacitance, C f , which as mentioned above, is estimated to be Cf » 1 pF.
- the terms in equation (14) are evaluated:
- Figures 7A and 7B show measured results versus frequency for the electrode configuration of Figure 2. These results show that the bias voltage has negligible effect on the motion of the electrode while the electrical sensitivity is roughly proportional to the bias voltage over a wide range of frequencies per Figure 7A.
- the measured electrode displacement amplitude as a function of frequency is independent of bias voltage for bias voltages of zero, 200 volts, and 400 volts.
- the predicted air displacement amplitude for a 1 pascal plane sound wave This shows that the electrode moves at least as much as the air in a plane wave, per Figure 7B.
- the electrical sensitivity is taken to be the difference in output voltages obtained from electrodes 1 and 3 relative to the amplitude of the sound pressure at the moving electrode. This shows that the sensitivity roughly doubles for a doubling of the bias voltage, as expected.
- Figures 7A-7B indicate that the electric field does not result in stiffening (or softening) of the motion of the moving electrode.
- the figure shows the measured electrode displacement amplitude as a function of frequency (Figure 7A) along with the measured electrical sensitivity, defined as the difference in the output voltages acquired from electrodes 1 and 3 (shown in Figure 2) relative to the incident sound pressure ( Figure 7B). Results are shown for bias voltages of zero, 200 volts, and 400 volts. While the response as a function of frequency is not ideal (i.e.
- this thin electrode can move with a displacement that is similar to that of the air in a sound field is in line with what is predicted for the sound-induced motion of a thin,flexible wall [18]. While numerous additional effects influence the motion of the electrode examined here and it does not closely resemble the problem of predicting sound transmission through walls, it is clear that a thin, lightweight membrane can move with the air in a sound field. If we consider the incident sound to be a harmonic wave at the frequency w, propagating normal to the plane of the membrane, one can calculate the ratio of the complex amplitude of the sound wave transmitted through the membrane, pt to that of the incident pressure, p1 [18],
- the electrode is highly compliant is, of course, a major reason that its motion is easily detected by this capacitive sensing scheme.
- the use of a highly compliant electrode can be effective as long as the sensing configuration does not itself introduce significant electrostatic forces that would affect the motion.
- the measured electrical sensitivity is shown in Figure 7B. Again, the frequency response is not ideal due to mechanical resonances but the sensitivity is in the range between 0.1 and I volt/ pascal over the lower frequency range shown. An optimized electrode design and a more refined readout circuit would doubdess provide improved results over these measurements.
- the moving electrode consists of a flat planar member.
- its free edge be curved.
- the plane of the moving member could also be oriented so that it is not parallel to the gap between the fixed electrodes.
- motion of the electrode will result in its overlap area with one of the fixed electrodes to increase while the overlap area with the other fixed electrode decreases. This would cause it to function much like the embodiment shown in Figure ID, in which the charge on the fixed electrodes depends on overlap area rather than distance as in Figure IC.
- the overlap area is formed by only the free edge of the moving electrode rather than its planar surfaces.
- the fact that the moving electrode is thin and oriented orthogonally to the fixed electrodes causes the force between them to be small.
- the electrostatic forces applied normal to its surface will approximately cancel.
- a negligible stiffness can be achieved by supporting the moving electrode by a hinge that has virtually no resistance to rotation or by making the moving electrode out of an extremely thin material that has negligible resistance to bending.
- the material is thin enough, one could configure it to resemble a cantilevered beam, which is fully-fixed to the supporting structure and free at its other end.
- the mechanical restoring stiffness need only be sufficient to resist any other environmental forces that may act on it, such as gravity.
- the bias voltage applied to the moving electrode can be set to a high value which improves the overall electrical sensitivity.
- a highly compliant moving electrode is used that readily moves in response to acoustic pressure.
- the electrode configuration enables the use of a relatively large bias voltage of 400 volts while having negligible effect on the electrode motion. This produces an output electrical sensitivity of approximately 0.5 volts/pascal.
- Another desirable characteristic of the capacitive sensor is the assurance of stability for the entire range of possible motions and bias voltages. As shown in Figures 4A-4C, when the moving electrode undergoes large motions, the restoring force will always act to return it to the equilibrium position, ensuring global stability, despite having very small resistance to small excursions from the equilibrium position.
- a cantilevered plate-shaped element has been described above as the transducing element for the acoustic waves in air to mechanical motion of a charge
- one or more fibers which have the advantage of a high aerodynamic drag to mass ratio.
- the technology since the electrostatic interaction of the sensing plates and the moving element does not substantially deflect the element nor materially alter its stiffness, the technology permits sensing of the approximate particle motion in the air surrounding the fiber by viscous drag, as compared to the pressure difference induced deflection of a plate as is more typically measured.
- a viscous drag moving element can be analyzed based on differences in pressure from a plane traveling acoustic wave acting on its two plane surfaces.
- One may construct an approximate, qualitative model by considering the moving element to be an elastic beam. Focusing attention on response at a single frequency, w, the beam deflection at a point along its length x, at time t, w(x, t), may be calculated by solving the following standard partial differential equation,
- E Young’s modulus of elasticity
- I is the area moment of inertia
- r is the density of the material
- b is the width
- h is the thickness
- P is the plane wave sound pressure amplitude
- k w/c is the wave number with c being the wave propagation speed
- d is the effective distance that sound would travel between the two plane surfaces of the beam
- C is a viscous damping coefficient.
- U is the complex amplitude of the acoustic particle velocity.
- FIG. 8A shows a planar diaphragm having an array of apertures. This design senses drag of moving air through the diaphragm, but such a design has a significant stiffness, and therefore a presumption that all terms of equation (21) are fully dominated by the viscous drag term is not generally satisfied.
- a perforated diaphragm represents an acceptable sensor.
- a diaphragm may be formed of multilayer graphene. This diaphragm may also be formed of polycrystalline silicon or silicon nitride in a microelectromechanical system (MEMS) design. The diaphragm may be intrinsically conductive or metallized, such as with a layer of gold. The diaphragm, or more generally the moving element, may be formed of an electret material.
- a typical silicon microfabrication process to create the thin velocity-sensing film begins with a bare silicon wafer on which a one-micron oxide is grown through wet oxidation. This oxide film provides an etch stop for a through wafer etch used to create an open air space behind the film.
- a silicon nitride film having thickness approximately 0.5 micron is then deposited using a low pressure chemical vapor deposition (LPCVD) furnace. The silicon nitride is patterned through optical lithography to define the holes to achieve porosity and to define the electrode edges.
- LPCVD low pressure chemical vapor deposition
- Portions of the nitride film are made to be conductive by depositing and patterning a thin (approximately 80 nm) layer of phosphorous doped silicon using a LPCVD process. The film is then annealed to form polycrystalline silicon. A through-wafer backside reactive ion etch (RIE) is performed to expose the backside of the silicon electrode. The electrode is released by removing the thermal oxide, using buffered hydrofluoric acid. The fabrication of the sensing electrodes is performed by depositing conductive films around the perimeter of the moving electrode.
- RIE reactive ion etch
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Abstract
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| Application Number | Priority Date | Filing Date | Title |
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| JP2021516543A JP7410935B2 (en) | 2018-05-24 | 2019-05-23 | capacitive sensor |
| KR1020207036841A KR20210013152A (en) | 2018-05-24 | 2019-05-23 | Capacitive sensor |
| EP19807144.1A EP3803554B1 (en) | 2018-05-24 | 2019-05-23 | Capacitive sensor |
| US17/058,102 US12253391B2 (en) | 2018-05-24 | 2019-05-23 | Multielectrode capacitive sensor without pull-in risk |
| CN201980040117.3A CN112334867B (en) | 2018-05-24 | 2019-05-23 | Capacitive sensor |
| US19/081,846 US20250207950A1 (en) | 2018-05-24 | 2025-03-17 | Capacitive sensor |
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| US17/058,102 A-371-Of-International US12253391B2 (en) | 2018-05-24 | 2019-05-23 | Multielectrode capacitive sensor without pull-in risk |
| US19/081,846 Continuation US20250207950A1 (en) | 2018-05-24 | 2025-03-17 | Capacitive sensor |
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Also Published As
| Publication number | Publication date |
|---|---|
| US20210199494A1 (en) | 2021-07-01 |
| JP2021526281A (en) | 2021-09-30 |
| US12253391B2 (en) | 2025-03-18 |
| US20250207950A1 (en) | 2025-06-26 |
| JP7410935B2 (en) | 2024-01-10 |
| CN112334867A (en) | 2021-02-05 |
| EP3803554A1 (en) | 2021-04-14 |
| EP3803554B1 (en) | 2026-01-07 |
| EP3803554A4 (en) | 2022-06-08 |
| KR20210013152A (en) | 2021-02-03 |
| CN112334867B (en) | 2025-11-11 |
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