EP0600488A2

Lead frame capacitor and capacitively-coupled isolator circuit using same.

Abstract

A capacitor (10) is provided including first and second electrodes (12,14) formed from portions of the lead frame structure (30) used in conventional integrated circuit packaging. The electrodes (12,14) are encapsulated with dielectric molding material (40) which provides dielectric insulation between the electrodes (12,14). A low power capacitively-coupled digital isolator circuit (50) is also provided. The circuit employs a pair of the lead frame capacitors (105,115) of the present invention and includes differential driver and receiver circuits (110,120). The receiver (120) can also include an optional filter (136) for increasing noise and glitch immunity.

EP0600488A2, drawing sheet 1
Sheet 1 of 7

Term

Term ended

Projected expiry passed 2 December 2013, 12.8 years ago.

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44 claims: 15 independent, 29 dependent

  1. 1
    A lead frame capacitor comprising:first and second capacitor electrodes separated by a region therebetween, wherein said first and second electrodes comprise portions of lead frame material adapted to couple charge therebetween;and    a dielectric molding material disposed in said region, said dielectric molding material providing dielectric insulation between said first and second electrodes.
  2. 5
    The lead frame capacitor of any of claims 1 to 4 wherein the first and second electrodes are formed from a single sheet of lead frame material.
  3. 8
    A method for making a lead frame capacitor comprising the steps of:(a) forming first and second electrodes in a sheet of lead frame material, wherein said electrodes are separated by a regionand are adapted to couple charge therebetween;and (b) providing dielectric molding material in said region as dielectric insulation between said first and second electrodes.
  4. 12
    The method of any of claims 8 to 11 further comprising the step of bonding wire to said electrodes prior to the step of providing dielectric molding material.
  5. 13
    The method of any of claims 8 to 12 wherein the step of providing dielectric molding material comprises encapsulating said first and second electrodes with said dielectric molding material.
  6. 15
    An isolator circuit comprising:a first circuit adapted to be coupled to a first ground potential;a second circuit adapted to be coupled to a second ground potential;and    one or more capacitors coupled between the first circuit and second circuit for providing capacitively-coupled isolation therebetween, the capacitors having electrodes formed from a lead frame structure.
  7. 20
    The isolator circuit of any of claims 16 to 19 wherein the first electrode and second electrode are formed from a single sheet of lead frame material.
  8. 21
    The isolator circuit of any of claims 15 to 20 comprising a pair of lead frame capacitors and wherein the first circuit comprises a driver circuit and the second circuit comprises a receiver circuit.
  9. 22
    The isolator circuit of any of claims 15 to 21 wherein the first circuit and second circuit are mounted on a lead frame in an integrated circuit package.
  10. 24
    The isolator circuit of any of claims 21 to 23 wherein the receiver circuit comprises a comparator.
  11. 26
    The isolator circuit of any of claims 21 to 25 wherein the driver circuit includes a plurality of inputs for accepting parallel input signals, and wherein one or more of the plurality of inputs is used to provide operating power to the driver circuit.
  12. 27
    The isolator circuit of any of claims 21 to 26 wherein the receiver circuit includes a plurality of outputs for providing parallel ouput signals.
  13. 28
    The isolator circuit of any of claims 15 to 20 wherein each of the first and second circuits comprise transceiver circuits.
  14. 31
    The isolator circuit of any of claims 28 to 30 wherein the second circuit includes a plurality of terminals for providing parallel ouput signals.
  15. 32
    An integrated circuit comprising:a first circuit mounted on a first conducting base;a second circuit mounted on a second conducting base;first and second capacitor electrodes, wherein said first conducting base, said second conducting base and said first and second capacitor electrodes are formed from a single sheet of conducting material;and    a dielectric molding material for encapsulating said first and second circuits, said first and second conducting bases and said first and second capacitor electrodes, wherein said first capacitor electrode and said second capacitor electrode are capacitively coupled through said dielectric molding material.
  16. 36
    The integrated circuit of any of claims 32 to 35 wherein the first circuit comprises a driver circuit and the second circuit comprises a receiver circuit, and wherein said integrated circuit is an integrated isolator circuit.
  17. 37
    A method for manufacturing an integrated circuit comprising:forming first and second conducting bases and first and second capacitor electrodes from a single sheet of conducting material;mounting a first semiconductor die on said first conducting base;mounting a second semiconductor die on said second conducting base;encapsulating said first and second semiconductor dies, said first and second conducting bases and said first and second capacitor electrodes with a dielectric molding material, said dielectric molding material capacitively coupling said first capacitor electrode to said second capacitor electrode.
  18. 41
    The method of any of claims 37 to 40 wherein the first circuit comprises a driver circuit and the second circuit comprises a receiver circuit, and wherein said integrated circuit is an integrated isolator circuit.
  19. 42
    The method of any of claims 37 to 40 wherein the first and second circuits comprise transceiver circuits, and wherein said integrated circuit is an integrated isolator circuit.
  20. 43
    The method of any of claims 37 to 42 wherein the forming step further comprises forming one or more integral support members from the single sheet of conducting material, said integral support members adapted to support said first and second conducting bases and said first and second electrodes during said mounting and said encapsulation steps.
Independent claims20