EP0147696A2

Miniaturized monolithic multi-layer capacitor and apparatus and method for making.

Abstract

A monolithic multi-layer capacitor is disclosed having a central capacitively active area and two electrode joining sections separated from the active area by sloped sections. The dielectric layers are about 1 micron thick in the active area and taper gradually to zero thickness in the sloped sections. Electrode layers in the active area have a thickness in the range from 200 to 500 Angstroms and sufficient thickness throughout the sloped sections for adequate current carrying capacity. Various acrylates are used for the dielectric layers, the number of layers ranging from a few to many thousands. Apparatus and methods are disclosed for the fabrication of such capacitors on a high speed, production scale basis. Such employ techniques for the flash evaporation of highly reactive monomers of acrylate dielectric materials so as to form a gaseous stream of such materials. The gas stream is controllably directed to a deposition surface for condensation and subsequent curing by a field enhanced gas discharge electron beam source. The control of the dielectric gas stream is accomplished by means of adjacent gas streams of an inert gas directed to areas of the deposition surface where deposition of the electrode material is unwanted. Means are disclosed for the atomization of the monomers of the dielectric material in preparation for its flash evaporation.

EP0147696A2, drawing sheet 1
Sheet 1 of 7

Term

Term ended

Projected expiry passed 7 December 2004, 21.8 years ago.

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28 claims: 11 independent, 17 dependent

  1. 1
    A high speed apparatus for forming capacitors comprising, in combination, a housing having vacuum portions, a carrier in said housing defining a rapidly moving surface movable repetitively through said portions, a depositing device in a vacuum portion for depositing conductive layers on said surface, a dielectric depositing device in a vacuum portion for depositing coatings of dielectric on said conductive layers, and means for controlling each of said devices so that a conductive layer is deposited, and coated with dielectric, before the repetitive surface passes said devices again for successive layers and coatings.
  2. 2
    A high speed apparatus for forming capacitors comprising, in combination, a vacuum chamber, a carrier in said chamber defining a rapidly moving continuous surface, a metal depositing device in said chamber for depositing layers of metal on said surface, a dielectric depositing device in said chamber for depositing coatings of curable dielectric on said metal layers, means in said chamber positioned for curing successive coatings of dielectric as they are deposited, and means for controlling each of said devices so that metal is deposited, coated with dielectric, and the dielectric is cured before the continuous surface passes said devices again for successive layers, coatings and curings.
  3. 5
    Apparatus for continuously producing under vacuum a monolithic multi-layer capacitor on a substrate surface comprising, in combination, means for forming a layer of electrode material on a surface within a predefined electrode forming zone, means for forming a coating of dielectric material on a surface within a predefined dielectric forming zone with said dielectric being bondable with the electrode material, and means for repeatedly passing a substrate surface carrying said layers and coatings through the two zones in the above sequence so that two different portions of the surface are simultaneously within their respective zones so as to produce alternate layers and coatings of electrode and dielectric on the substrate surface.
  4. 11
    Apparatus for producing a capacitor under vacuum on a substrate surface comprising, in combination, means for forming a layer of electrode material of given thickness on a surface within a predefined electrode forming zone, means for forming a coating of curable dielectric material of given thickness on a surface within a predefined dielectric forming zone, a radiation source for curing the dielectric coating within the dielectric forming zone, means for moving a substrate alernately into the electrode forming zone and the dielectric forming zone, and means for controlling the electrode layer forming means, the dielectric coating forming means, the radiation source and the moving means so as to produce alternate layers and coatings of electrode and cured dielectric materials of'predetermined thicknesses.
  5. 15
    The method of making a capacitor comprising the steps of depositing successive conductive layers with the layers being offset so as to define a central capacitance region of stacked electrically isolated extending layers, depositing on each of said layers a coating of dielectric so that the layers in the capacitance region are substantially spaced and separated by a coating of dielectric, said coating deposition being controlled so as to slope toward cut-off lines spaced substantially from two separated portions of the central capacitor region, said layer deposition extending beyond said cut-off lines so that successive layers fuse into spaced-apart terminal portions, and said cut-off line spacing being sufficient to cause the uppermost dielectric coating of a multi-layer capacitor to have a horizontal dimension from the capacitor region to the terminal portion to accept a final layer deposition.
  6. 18
    In the method of depositing successive layers of conductors separated by dielectric to form a capacitor, controlling the depositing of dielectric by the steps of directing vaporized dielectric at a uniform rate to a center region to form a uniform coating dependent on time, defining edge barriers for said vaporized dielectric spaced from said center region so that dielectric is not deposited past said barriers, and restricting vaporized dielectric flow from said center region to said edge barriers so as to form tapered surfaces from said center region to said edges.
  7. 20
    The process of continuously producing under vacuum a monolithic multi-layer capacitor on a substrate comprising the steps of forming a layer of electrode material on one part of a substrate within a predefined electrode forming zone, simultaneously forming a coating of dielectric material on another part of the substrate within a predefined dielectric forming zone with said dielectric material being bondable with the electrode material, and repeatedly passing the substrate through the two zones in sequence so as to cyclically change the parts thereof that are within each zone so as to produce alternate layers and coatings of electrode and dielectric on the substrate.
  8. 22
    The process of producing a capacitor under vacuum on a substrate surface comprising the steps of (a) forming a layer of electrode material of given thickness on a substrate, (b) forming a coating of radiation curable dielectric material of given thickness within preselected limits on the electrode layer, (c) curing the dielectric coating by means of a radiation source, (d) forming another layer of electrode material of given thickness over the cured dielectric coating, and (e) repeating steps (b), (c) and (d) a selected number of times so as to produce alternate layers and coatings of electrode and cured dielectric materials of predetermined thicknesses on the substrate.
  9. 25
    A capacitor comprising, in combination, conductive layers with the layers being offset so as to define a central capacitance region of stacked electrically isolated extending layers, coatings of dielectric on said conductive layers so that the layers in the capacitance region are substantially spaced and separated by a coating of dielectric, said coatings sloping toward lines spaced substantially from two separated portions of the central capacitor region, said layers extending beyond said lines with successive layers fused into spaced-apart terminal portions, and said line spacing being sufficient to cause the uppermost dielectric coating of a multi-layer capacitor to having a horizontal dimension from the capacitor region to the terminal portion supporting a final conductive layer.
  10. 26
    A monolithic multi-layer capacitor having a capacitively active section, and two electrode joining sections, each separated from the active section by a sloping section, said capacitor comprising first and second sets of electrode layers interleaved with one another, each layer of each set having an active area extending through and contributing to the capacitively active section of the capacitor in a stacked and spaced apart relationship with the active areas of all the other layers and each layer having an electrode joining margin in a stacked electrically contacting relationship with the margins of the other layers in its set so as to form an electrode joining section of the capacitor, and each layer having a sloped portion running between its active area and its margin contributing to a sloped section of the capacitor, and a dielectric coating in adherent contact with and between each adjacent electrode layer pair, said dielectric coating being of substantially uniform thickness in the capacitively active section and tapering to zero thickness through the sloping section.
  11. 28
    The product produced by the process of claims 15, 20 or 22.