Method of producing a multilayer component
A method of producing a fully active multilayer element including producing a fully active stack, and optionally sintering of the fully active stack or a green precursor thereof; applying outer electrodes onto sides A′ and C′ of the fully active stack and contacting of the uncoated inner electrodes so that the two outer electrodes electrically connect to the uncoated inner electrode layers.
1. A method of producing a fully active stack or a green precursor of the fully active stack comprising:
providing a sintered or unsintered stack with sides A, B, C and D respectively extending in a stack direction, made of a plurality of alternately successive ceramic dielectric layers and inner electrode layers, wherein the inner electrode layers are formed respectively continuously with respect to the sides A and C and respectively not continuously with respect to either the side B or the side D;
combining and temporarily contacting the inner electrodes or the unsintered precursors of the inner electrodes, and contacting the respective side on one of sides B and D via an outer contact with temporary isozones;
electrically driving the inner electrodes driveable via the side B and coating at least the electrically driven inner electrodes, or the unsintered precursors of the inner electrodes, on the side A with an organic powder coating material with a solids content of 100%, and curing or melting the organic powder coating material;
electrically driving the inner electrodes driveable via the side D and coating at least the electrically driven inner electrodes, or the unsintered precursors of the inner electrodes, on the side C with the organic powder coating material and curing or melting the organic powder coating material;
applying a burn-in paste on the sides A and C, debinding and burning the burn-in paste, and removing the organic powder coating material; and
separating the stack to form at least one fully active stack, or a green precursor of the fully active stack, with the coated inner electrodes, or the unsintered precursors of the inner electrodes, on sides A′ and C′ that are formed from the sides A and C, respectively, after separating the stack, the sides A′ and C′ having the same orientation as the sides A and C, respectively.
2. The method according to claim 1 , wherein the organic powder coating material is a combination of a photoresist and an electroluminescent coating material.
3. The method according to claim 1 , wherein, in order to cure the organic powder coating material, a mating electrode is placed on the sides A and C, and the functional coating material is cured or crosslinked by electric current-induced input of heat when a voltage is applied.
4. The method according to claim 1 , wherein a gap is provided between the inner electrode layers and the organic powder coating material or between a coating material surface and a mating electrode.
5. The method according to claim 1 , wherein the organic powder coating material is electrostatically applied onto the electrically driven inner electrodes and melted.
6. The method according to claim 5 , wherein the organic powder coating material is applied onto a layer of photoresist.
7. The method according to claim 1 , wherein the organic powder coating material is a photoresist that is cured by exposure to light.
8. The method according to claim 1 , wherein the plurality of ceramic dielectric layers are piezoelectric layers.
9. The method according to claim 1 , further comprising developing the organic powder coating material on at least one of the sides A and C.
10. The method according to claim 1 , wherein a photoresist is the organic powder coating material.