Nova Patents
EP1595703A2

Direct imaging polymer fluid jet orifice

Abstract

A process for creating and an apparatus employing shaped orifices in a semiconductor substrate (20). A layer of slow cross-linking material (34) is applied on the semiconductor substrate (20). An orifice image (42) and a fluid-well image (43) is transferred to the layer of slow cross-linking material (34). That portion of the layer of slow cross-linking material (34) where the orifice image (42) is located is then developed along with that portion of the layer of slow cross-linking material (34) where the fluid well image (43) is located to define an orifice opening in the semiconductor substrate (20).

EP1595703A2, drawing sheet 1
Sheet 1 of 17

Term

Term ended

Projected expiry passed 1 March 2019, 7.6 years ago.

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10 claims: 8 independent, 2 dependent

  1. 1
    A method for constructing a fluid jet print head having a semiconductor substrate (20) having a first surface and a second surface having a plurality of fluid feed slots (30) extending through said semiconductor substrate (20) and coupled to a plurality of fluid feed channels (44) on said second surface, comprising the steps of applying a layer of slow cross-linking material (34) on said first surface of said semiconductor substrate (20);transferring an orifice image (42) and a fluid-well image (43) to said applied layer of slow cross-linking material (34);anddeveloping those portions of said layer of slow cross-linking material (34) where said transferred orifice image (42) is located to locate a respective orifice opening and said transferred fluid-well image (43) is located to locate a respective fluid-well opening.
  2. 2
    The method in accordance with claim 1, wherein said step of applying said slow cross-linking material (34) further comprises the step of selecting said slow cross-linking material (34) from a group consisting of distinct layers of photoimagable polymer and optical dyes, mixtures of photoimagable polymer and optical dyes, and photoimagable polymer.
  3. 3
    The method in accordance with claim 1, wherein said step of applying said slow cross-linking material (34) further comprises the step of selecting said slow cross-linking material (34) from a group consisting of distinct layers of photoimagable epoxy and optical dyes, mixtures of photoimagable epoxy and optical dyes, and photoimagable epoxy.
  4. 4
    The method in accordance with claim 1, wherein said steps of applying said layer of slow cross-linking material (34) further comprises the step of applying an 8 to 34 micron thickness of said applied layer of slow cross-linking material (34).
  5. 5
    The method in accordance with claim 1, wherein said step of transferring said orifice image (42) and said fluid-well image (43) further comprises exposing said slow cross-linking material (34) with electromagnetic energy through a multi-density level mask.
  6. 6
    The method in accordance with claim 1, wherein said step of transferring said orifice image (42) and said fluid-well image (43) further comprises:exposing said slow cross-linking material (34) to a patterned high dosage of patterned electromagnetic energy;andexposing said slow cross-linking material (34) to a patterned low dosage of patterned electromagnetic energy.
  7. 7
    A printhead for ejecting fluid using a semiconductor substrate, comprising:a semiconductor substrate (20) having a first surface and a second surface;a stack of thin-film layers (50) affixed to said first surface of said semiconductor substrate (20), said stack of thin-film layers (50) further comprising an energy dissipating element (32), and said stack of thin-film layers (50) defining a fluid feed slot (30);a layer of slow cross-linking material (34) having an orifice (42) defined therein, said slow cross-linking material (34) applied on said stack of thin-film layers (50), said orifice (42) positioned over said energy dissipating element (32) and said layer of slow cross-linking material (34) having a fluid-well (43) defined therein, said fluid-well (43) positioned over said fluid feed slot (30);anda fluid feed channel (44) defined within said second surface of said semiconductor substrate (20) and opening into said fluid feed slot (30).
  8. 8
    A multi-density level mask, comprising:a transparent quartz substrate (200);a layer of patterned semi-transparent dielectric material (212) applied on said transparent quartz substrate (200);anda layer of patterned opaque material (224) applied on said layer of patterned semi-transparent dielectric material (212).