Printhead dies in an inject pen or print bar may include channels that carry fluid, such as ink, to the ejection chambers. Ink may be distributed from the ink supply to the die channels through passages in a structure that supports the printhead die(s) on the pen or print bar. It may be desirable to shrink the size of each printhead die, for example to reduce the cost of the die and, accordingly, to reduce the cost of the pen or print bar. The use of smaller dies, however, may require changes to the larger structures that support the dies, including the passages that distribute ink to the dies.
The detailed description section references the drawings, wherein:
all in which various, embodiments may be implemented.
Examples are shown in the drawings and described in detail below. The drawings are not necessarily to scale, and various features and views of the drawings may be shown exaggerated in scale or in schematic for clarity and/or conciseness. The same part numbers may designate the same or similar parts throughout the drawings.
Inkjet printers that utilize a substrate wide print bar assembly have been developed to help increase printing speeds and reduce printing costs. Conventional substrate wide print bar assemblies include multiple parts that carry printing fluid from the printing fluid supplies to the small printhead dies from which the printing fluid is ejected on to the paper or other print substrate. While reducing the size and spacing of the printhead dies continues to be important for reducing cost, channeling printing fluid from the larger supply components to ever smaller, more tightly spaced dies requires complex flow structures and fabrication processes that can actually increase cost.
Described herein are various implementations of a fluid ejection structure enabling the use of smaller printhead dies and more compact die circuitry to help reduce cost in substrate wide inkjet printers. A printhead structure implementing an example of the fluid ejection structure may include a printed circuit board including a conductor layer, a cover layer over the conductor layer, and a cavity to accommodate at least printhead die. Multiple printhead dies may be embedded, glued, or otherwise mounted in cavities in the printed circuit board such that drop ejectors of the printhead dies are exposed at a surface of the printed circuit board. In various implementations, the cover layer may protect the underlying conductor layer from corrosion through exposure to printing fluid (e.g., ink) and other moisture, provide a substantially planar and durable surface against wiping during operation of the fluid ejection apparatus with high resistance to wear and low friction, and protect against molding material flowing into the area of the bond pads.
In various implementations, the printed circuit board in effect grows the size of each printhead die for making fluid and electrical connections and for attaching the printhead dies to other structures, thus enabling the use of smaller dies. For the various implementations described herein, a printed circuit board fluid ejection apparatus may enable the use of long, narrow and very thin printhead dies. For example, a 100 μm thick printhead die that is about 26 mm long and 500 μm wide can be embedded in a 1 mm thick printed circuit board to replace a conventional 500 μm thick silicon printhead die. The ease with which printed circuit boards can be fabricated and processed may also help simplify the fabrication of page wide print bars and other printhead structures as new, composite structures built-in printing fluid channels, eliminating the difficulties of forming the printing fluid channels in a substrate.
In various implementations, the fluid ejection structure may not be limited to print bars or other types of printhead structures for inkjet printing, but may be implemented in other devices and for other fluid flow applications. Thus, in one example, the fluid ejection structure may include a micro device embedded in a printed circuit board having fluid feed slots and channels therein through which fluid may flow to the micro device. The micro device, for example, could be an electronic device, a mechanical devise, or a microelectromechanical system (MEMS) device. The fluid flow, for example, could be a cooling fluid flow into or onto the micro device or fluid flow into a printhead die or other fluid dispensing micro device.
As used herein, a “printed circuit board” (sometimes abbreviated “PCB”) means a non-conductive substrate with conductive pathways for mechanically supporting and electrically connecting to an electronic device and may comprise a stack of a plurality of layers such as, for example, prepreg layers and conductor layers comprising metal; a “micro device” means a device, such as a printhead die, etc., having one or more exterior dimensions less than or equal to 30 mm; “thin” means a thickness less than or equal to 650 μm; a “sliver” means a thin micro device having a ratio of length to width (L/W) of at least three, a “printhead” and a “printhead die” mean that part of an inkjet printer or other inkjet type dispenser that dispenses fluid from one or more openings. A printhead includes one or more printhead dies. “Printhead” and “printhead die” are not limited to printing with ink and other printing fluids but also include inkjet type dispensing of other fluids and/or for uses other than printing.
The fluid ejection apparatus 100 may include a plurality of printheads 102 embedded in an elongated printed circuit board 106 and arranged generally end to end in a row lengthwise in a staggered configuration in which the printheads 102 in the row overlap another printhead 102 in that row. Each of the printheads 102 may include at least printhead die sliver 104. Although ten printheads 102 are shown in a staggered configuration, more or fewer printheads 102 may be used and/or may be arranged in a different configuration. Likewise, although each of the printheads 102 is illustrated as having four printhead die slivers 104, more or fewer printhead die slivers 104 may be used and/or may be arranged in a different configuration. In addition, although one row of staggered printheads 102 is shown, more rows may be possible. For example, in some configurations, a fluid ejection apparatus may include multiple rows of printheads 102, and in at least some of these configurations, multiple rows of printheads 102 may print multiple different color.
Each printhead 102 may include a single printhead die sliver 104 or multiple die slivers 104, each sliver 104 with at least one row of drop ejectors 108 exposed at a surface of the printed circuit board 106 through which printing fluid may be ejected from corresponding fluid ejection chambers 110. The printhead dies 104 may be coupled to the printed circuit board 106 using a die attach adhesive or molding material 112. As illustrated, for example, the printhead dies 104 are embedded in a molding material 112 in a cavity (defined by walls 114) of the printed circuit board 106 to couple the printhead dies 104 within the printed circuit board 106.
The fluid ejection apparatus 100 may include a fluid feed slot/channel 116 at a surface opposite the exposed drop ejectors 108 in the printed circuit board 106 to supply printing fluid to each printhead die sliver 104. In various implementations, the fluid feed slot/channel 116 may comprise a plunge-cut fluid feed slot extending through the surface of the printed circuit board 106 to expose the printhead die 104. Other suitable configurations for each printhead 102 may be possible. For example, more or fewer printhead die slivers 104 may be used with more or fewer ejection chambers 110 and fluid feed slots 116 or larger dies (not slivers) may be used.
Printing fluid may flow into each ejection chamber 110 from a manifold 118 extending lengthwise along each die sliver 104 between the two rows of ejection chambers 110. Printing fluid may feed into the manifold 118 through multiple ports 120 that are connected to the printing fluid feed slot/channel 116 at the bottom surface of the die 104. The idealized representation of a printhead die 104 in
The printed circuit board 106 may include a plurality of layers including at least one conductor layer 130. In many implementations, the printed circuit board 106 may include alternating layers of conductor layers and insulating layers, and may include redistribution layers or conductive pathways electrically connecting various parts of the conductor layers to each other and/or to a component external to the printed circuit board 106. As such, although
The conductor layer 130 may include at least one bond pad 132 electrically connected to an electrical terminal 128 of at least one of the printhead dies 104. The conductor layer 130 may carry electrical signals to the drop ejectors 108 and/or other elements of the printhead dies 104, and in some implementations, may be electrically connected to an ASIC or other non-printhead die electronic device 134 embedded in the printed circuit board 106. In at least some implementations, the conductor layer 130 may include a ground layer, which may allow for electrostatic discharge. In some implementations, the printhead dies 104 may be electrically connected to each ether. In the example shown, the conductor layer 130 may be electrically connected to the printhead dies 104 through bond wires 136. As shown, the bond wires 136 may be encapsulated in an encapsulant material 138. Although the illustrated examples depict printhead dies 104 wire-bonded to the printed circuit board 106, other electrical interconnection arrangements may be possible within the scope of the present disclosure. For example, in some implementations, a printhead die 104 may be electrically interconnected to a printed circuit board 106 by solder conductive adhesive, or the like. It should be noted that the encapsulant material 138 is omitted in
In some implementations, rather than electrically connecting a top surface of the printhead die 104 to the printed circuit board 106, as illustrated in
As illustrated in
In various implementations, the cover layer 140 may comprise a polymer material such as, for example, polyimide, polyethylene naphthalate, or polyethylene terephthalate. In at least some implementations, the cover layer 140 may be coupled to the printed circuit board 106 by an adhesive layer 142 such as, for example, an epoxy adhesive. As illustrated in the Figures, the cover layer 140 may include an opening corresponding to the cavity (defined by walls 114) of the printed circuit board 106, and in some cases, may include one or more other openings, such as, for example, an opening 146 exposing a bond pad 132 of the conductor layer 130 in cases where the printhead die 104 is electrically connected to the printed circuit board 106 by a wires 136. In many of these implementations, the encapsulant material 138 may be formed to cover the opening 146 after the bond wires 136 are electrically coupled to the bond pad 132 and the electrical terminal 128 of the printhead die 104.
In various implementations, the cover layer 140 may form a barrier to protect the underlying conductor layer 130/131 or another layer of the printed circuit board 106 from corrosion from exposure to printing fluid (e.g., ink) and other moisture. In at least some implementations, the cover layer 140 may be able to provide protection not afforded by conventional solder resists or other materials, which may be reactive or otherwise unable to withstand exposure to printing fluid and/or mechanical wiping. The cover layer 140 may provide a substantially planar and durable surface against wiping during operation of the fluid ejection apparatus 100 with high resistance to wear and low friction.
As noted herein, the conductor layer may include a ground layer, electrostatic discharge current may be routed to ground via the ground layer. In many cases, the ground layer of the printed circuit board 106 should not be left exposed to the printing fluid and wiping action. In various implementations, the cover layer 140 may have a voltage breakdown threshold, which may be controlled by the thickness of the cover layer 140, and electrostatic discharge currents may be allowed to burn through and route to ground via the ground layer. For example, a cover layer 140 comprising a 25 μm polyimide film will break down to safely route an electrostatic current when the voltage exceeds 4 kV.
In various ones of these implementations, the cover layer 140 and the molding material 112 may be level to each other so as to provide a continuously planar surface for wiping. In many implementations, the top layer 126 of the printhead die 104 may also be level to the cover layer 140 and the molding material 112 to facilitate wiping. In implementations in which a wire bond is encapsulated by an encapsulate material, the encapsulate material may be level or non-level to the cover layer 140 and the molding material 112. In at least some instances where the encapsulant material is not level to the cover layer 140 and the molding material 112. It may be desirable to form the encapsulate material with as low as possible profile to facilitate wiping across the surface of the fluid ejection apparatus.
In various implementations, the cover layer 140 may be coupled to the printed circuit board 106 prior to embedding the printhead dies 104 in the printed circuit board 106, as illustrated in
In some implementations, the printed circuit board 106 used in
The method 1200 may begin or proceed with providing a printed circuit board including a conductor layer, a cover layer forming a surface of the printed circuit board, and a cavity at block 1202. As described herein, the conductor layer of the printed circuit board may include bond pads for interconnecting with a printhead die or other micro devices and a ground layer for providing electrostatic discharge protection. The cover layer may comprise any suitable material such as, for example, a polymer material. In various implementations, for example, the cover layer may comprise polyimide.
The method 1200 may proceed with embedding at least one printhead die in a molding material in the cavity such that the molding material is level with the cover layer. In preparation for receiving the printhead die, the cavity may be sawn or otherwise formed in the printed circuit board. In various implementations, a tape or other level surface may be formed over at least a portion of the cover layer and extending over the cavity and the printhead die may be set into the cavity from a bottom surface of the printhead die. In these implementations, the molding material may then be flowed around the printhead die to embed the printhead die in the cavity, with the molding material be formed to be level with the cover layer by virtue of mold formed by the tape and the cavity walls of the printhead die.
In various implementations, a fluid feed slot/channel may be plunge-cut through the printed circuit board, either before or after the printhead die is embedded in the printed circuit board. In at least some implementations, forming the fluid feed slot/channel after the printhead die is embedded in the printed circuit board may provide a more mechanically robust structure into which the fluid feed slot/channel may be formed as compared to forming the fluid feed slot/channel into the printhead die without a printed circuit board, which may result in fewer cracks during the formation of the fluid feed slot/channel. In addition, handling of the printhead die may be facilitated by coupling the printhead die to the larger footprint printed circuit board. In other implementations, the printed circuit board may include the fluid feed slots before the printhead dies are embedded in the printed circuit board.
The method 1200 may proceed with electrically connecting at least one of the printhead dies to the conductor layer of the printed circuit board. In various implementations, the cover layer may include an opening exposing the bond such that the printhead die may be electrically connected to the bond pad through the opening. In various implementations, the printhead die may be electrically connected to the bond pad by at least one wire. The electrically connections may then be encapsulated in an encapsulate material. In some implementations, the printhead die may be electrically connected to the conductor layer, which may be a top or bottom surface of the printed circuit board, by way of a through-silicon via in the printhead die and one or more conductive pathways in the printed circuit board.
Various aspects of the illustrative embodiments are described herein using terms commonly employed by those skilled in the art to convey the substance of their work to others skilled in the art. It will be apparent to those skilled in the art that alternate embodiments may be practiced with only some of the described aspects. For purposes of explanation, specific numbers, materials, and configurations are set forth in order to provide a thorough understanding of the illustrative embodiments. It will be apparent to one skilled in the art that alternate embodiments may be practiced without the specific details. In other instances, well-known features are omitted or simplified in order not to obscure the illustrative embodiments.
Although certain embodiments have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that a wide variety of alternate and/or equivalent embodiments or implementations calculated to achieve the same purposes may be substituted for the embodiments shown and described without departing from the scope of this disclosure. Those with skill in the art will readily appreciate that embodiments may be implemented in a wide variety of ways. This application is intended to cover any adaptations or variations of the embodiments discussed herein. It is manifestly intended, therefore, that embodiments be limited only by the claims and the equivalents thereof.
Filing Document | Filing Date | Country | Kind |
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PCT/US14/13730 | 1/30/2014 | WO | 00 |