EP0902387A2

Electrostatic discharge protection of a capacitive type fingerprint sensing array

Abstract

A planar fingerprint pattern detecting array includes a large number of individual skin-distance sensing cells that are arranged in a row/column configuration. Each sensing cell includes an amplifier having an ungrounded input mode and an ungrounded output node. Output-to-input negative feedback that is sensitive to the fingerprint pattern is provided for each amplifier by way of (1) a first capacitor plate that is placed vertically under the upper surface of a dielectric layer and is connected to the ungrounded amplifier input node, (2) a second capacitor plate that is placed vertically under the upper surface of the dielectric layer in close horizontal spatial relation to the first capacitor plate and is connected to the ungrounded output node, and (3) an ungrounded fingertip whose fingerprint pattern is to be detected, which ungrounded fingertip is placed on the upper surface of the dielectric layer in close vertical spatial relation with the first and second capacitor plates. Electrostatic discharge protection relative to electrostatic potential that may be carried by the ungrounded fingertip is provided by placing a number of grounded metal paths within the dielectric layer to spatially surround each of the first and second capacitor plates, this being done in a manner that does not disturb the ungrounded state of the fingertip.

EP0902387A2, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Projected expiry passed 10 September 2018, 8 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

26 claims: 8 independent, 18 dependent

  1. 1
    A method of providing electrostatic discharge protection for a capacitive fingerprint pattern detecting array, comprising the steps of:providing a fingerprint pattern detecting array having a number of individual skin-distance sensing cells that are arranged in a closely spaced physical configuration;providing a dielectric layer for said array, said dielectric layer having an upper surface;placing an ungrounded fingertip having said fingerprint pattern on said upper surface;providing each sensing cell with an amplifier having an ungrounded input mode and an ungrounded output node;providing ungrounded output-mode-to-input-node feedback for each of said amplifiers, said feedback being sensitive to said fingerprint pattern;providing said feedback for each of said amplifiers by way of (I) a first capacitor plate that is placed vertically under said upper surface of said dielectric layer and is connected to said ungrounded input node, (2) a second capacitor plate that is placed vertically under said upper surface of said dielectric layer in close horizontal spatial relation to said first capacitor plate and is connected to said ungrounded output node, and (3) said ungrounded fingertip in vertical spatial relation with said first and second capacitor plates;providing a metal path vertically under said upper surface of said dielectric layer, to spatially surround but not physically engage said first and second capacitor plates;and connecting said metal path to ground, to thereby protect said input and output nodes from electrostatic potential that may be carried by said fingertip in a manner that does not disturb said ungrounded state of said fingertip.
  2. 5
    The method of any of claims 1, 2 or 4 including the step of:placing said first and second capacitor plates and said metal path on a common physical plane.
  3. 8
    Apparatus providing electrostatic discharge protection to an object-distance sensitive device having a generally planar physical array of a plurality of individual distance-measuring capacitance-cells, each cell of which includes a pair of electrically ungrounded capacitor plates that are electrically isolated from each other and are placed below an ungrounded dielectric surface that is adapted for physical association with a portion of an ungrounded object, each cell also having an amplifier with an ungrounded input-node that is connected to one said capacitor plates and an ungrounded output-node that is connected to the other of said capacitor plates, wherein said pair of capacitor plates and said ungrounded object for each cell operate to provide a compound-feedback-capacitor whose capacitance value is a function of a distance between a portion of said ungrounded object and said dielectric surface, said apparatus comprising:grounded metal path means placed below said ungrounded dielectric surface so as to be electrically isolated from, and so as to physically surround, each of said capacitor plates of each of said cells.
  4. 10
    Distance measuring apparatus for providing an output indicative of the ridge/valley fingerprint pattern of a fingertip, said apparatus comprising:a physical array having a plurality of individual distance-sensing capacitance-cells;each capacitance-cell including a first and a second electrically ungrounded capacitor plate that are electrically isolated from each other and are placed below an ungrounded dielectric surface that is adapted for physical association with a portion of an electrically ungrounded fingertip;each capacitance-cell including an amplifier having an electrically ungrounded input-node connected to said first capacitor plate, and having an electrically ungrounded output-node connected to said second capacitor plate;said first and said second of capacitor plates being adapted to form a compound-capacitor with an ungrounded fingertip currently resident on said dielectric surface, said compound-capacitor providing amplifier feedback as a function of a distance between a portion of the ungrounded fingertip ridge/valley pattern and said dielectric surface;and electrically grounded metal path means placed below said ungrounded dielectric surface in a manner to be electrically isolated from, and in a manner to physically surround, each of said capacitor plates of each of said capacitance-cells.
  5. 13
    The apparatus of any of claims 10 to 13 wherein:said capacitor plates and said metal path means are placed in a common plane that is generally parallel to said dielectric surface.
  6. 15
    Distance measuring apparatus for providing an output indicative of the ridge/valley fingerprint pattern of a fingertip, said apparatus comprising:a physical array having a plurality of individual distance-sensing capacitance-cells;
  7. 20
    A method providing electrostatic discharge protection for vertical distance measuring apparatus that provides an output indicative of the ridge/valley fingerprint pattern of a fingertip, wherein the apparatus includes a plurality of individual distance-sensing capacitance-cells, wherein each capacitance-cell includes grounded capacitor plate means placed vertically below an ungrounded and generally horizontal dielectric surface adapted for physical association with a portion of an electrically ungrounded fingertip, wherein each capacitance-cell further includes an amplifier having an ungrounded input-node and an ungrounded output-node connected to the capacitor plate means, wherein the capacitor plate means forms a compound-capacitor with an ungrounded fingertip currently resident on the dielectric surface, and wherein the compound-capacitor provides amplifier feedback as a function of a distance between a portion of the ungrounded fingertip ridge/valley pattern and the dielectric surface, said method comprising:providing grounded metal path means vertically below the ungrounded dielectric surface in a manner to be electrically isolated from the capacitor plate means of each of the capacitance-cells.
  8. 23
    Apparatus providing an electrical output that is indicative of the ridge/valley fingerprint pattern of a fingertip, said apparatus comprising:a physical array having a dielectric layer with plurality of individual capacitance-cells formed therein;each capacitance-cell including a first and a second electrically ungrounded capacitor plate that are electrically isolated from each other and are placed below an ungrounded dielectric surface of said dielectric layer;said dielectric surface being adapted for physical association with an electrically ungrounded fingertip;an amplifier for each of said capacitance-cells, each of said amplifiers having an electrically ungrounded input-node connected to a said first capacitor plate, and having an electrically ungrounded output-node connected to a said second capacitor plate;said first and said second of capacitor plates of each capacitor-cell forming a compound-capacitor with an ungrounded fingertip resident on said dielectric surface;said compound-capacitors providing output-to-input amplifier feedback as a function of a distance of an ungrounded fingertip ridge/valley pattern from said dielectric surface;and electrically grounded metal path means placed within said dielectric layer and below said ungrounded dielectric surface in a manner to be electrically isolated from and to physically surround each of said capacitor plates of each of said capacitance-cells.