The invention relates to an electrohydrodynamic print head and to a method for operating such a print head.
WO 2016/120381 describes an electrodynamic print head having a plurality of nozzles located in a plurality of wells. Extraction electrodes are located around the wells at a level below said nozzles. They are used to extract ink from the nozzles. In addition, a continuous shielding electrode (shielding layer) can be arranged around the wells at a level below the extraction electrodes. The shielding electrode reduces crosstalk between the nozzles and maintains a homogeneous electric field between the print head and the target. In one embodiment, the extraction electrodes are split into two or three segments, which are operated at slightly different voltages for laterally deflecting the ink.
The problem to be solved by the present invention is to provide a print head with good lateral ink deflection as well as a method for operating such a print head.
This problem is solved by the print head and the method of the independent claims.
In particular, the electrohydrodynamic print head comprises at least the following elements:
The expression “located at different angular positions around the well” means that there is at least one shielding electrode located at a first horizontal angular direction as seen from the central axis of the well and another shielding electrode arranged at another horizontal angular direction. The two shielding electrodes are capable to carry different potentials in order to laterally deflect the ink, i.e. they are advantageously electrically insulated from each other.
The expression “for each well” indicates that the wells and nozzles the claims refer to are those wells and nozzles that have several shielding electrodes for lateral deflection of the ink. There may be “other” wells and nozzles on the print head without several such shielding electrodes arranged around them, i.e. nozzles and wells without such a lateral deflection functionality. The claims do not rule out that, in addition to the nozzles with lateral deflection capability, there may be other nozzles on the print head that do not have this capability.
The invention is based on the understanding that the prior art solution of segmenting the extraction electrodes leads to various problems. For one, it necessitates to feed several voltages to each nozzle and, since the nozzles are to be operated individually, complex wiring is required within the print head in order to generate at least three independent potentials at each nozzle. In contrast to this, if the lateral ink deflection is separated from ink extraction, the wiring can be simpler because, often, the deflection can be the same for a large number of nozzles.
In addition, using the shielding electrodes for deflection is more efficient because they shape the electric field in a large volume, basically in the region between the shielding electrodes and the target, at least within a distance that is equivalent to the distance between two nozzles. In contrast to this, the reach of the extraction electrodes is basically limited to the small volume of the well.
Finally, in WO 2016/120381, the aperture of the deflection is limited by the diameter-to-depth ratio of the wells. In addition, a lateral asymmetry in the electrical field used for extracting the ink can strongly affect the shape of the meniscus at the nozzle and lead to lateral droplet extraction, which makes it even more likely that ink hits the wall of the well, which can lead to a flooding of the well.
Advantageously, the shielding electrodes cover at least 90% of a circumference of each well, i.e. they cover all or most of the circumference of the well in order to shield the field of the extraction electrode.
In one embodiment, the print head has several subsets of shielding electrodes, with each subset comprising several electrically interconnected shielding electrodes located at different wells. In other words, the shielding electrodes of a subset can be supplied with a single voltage, which simplifies the wiring of the print head.
In particular, there may be at least a first subset-type of shielding electrodes. The shielding electrodes of each set of the first subset-type are interconnected to each other by interconnect lines located at the vertical level of the shielding electrodes, i.e. the electrodes of this subset-type are directly interconnected on the shielding electrode layer.
There may be at least two subsets of the first subset-type, with a row of said wells being arranged between the shielding electrodes of the two subsets.
There may also be at least one second subset-type of shielding electrodes, wherein the shielding electrodes of each set of the second subset-type are interconnected to each other by means of vias to interconnect lines located on a vertical level above the shielding electrodes. In this case, the interconnections between the shielding electrodes are spatially separated from the level of the shielding electrodes, which simplifies the design of the layer forming the shielding electrodes. This is particularly advantageous in combination with a first subset as mentioned above because the wiring of the two subset-types can be spatially separated.
There may be at least two subsets of the second subset-type, with a row of said wells being arranged between the shielding electrodes of the two subsets.
The print head may further comprise a plurality of ventilation openings including blow openings and suction openings. They are adapted to blow gas into the space below the shielding electrodes and to suck gas from said space, thereby ventilating the space for improved ink drying.
In that case, the shielding electrodes can be used to compensate for lateral gas flows generated between the blow openings and the suction openings.
In one embodiment, the print head may have a regular matrix of nozzles and ventilation openings. Within this matrix, each nozzle is arranged at the center of two suction openings and two blow openings and each ventilation opening is arranged at the center of four nozzles. In this case, the gas flows around two adjacent nozzles are reversed with respect to each other, i.e. there is an alternating pattern of gas flows.
In order to compensate for such or similar alternating patterns of gas flows, there may be at least a subset A of interconnected shielding electrodes and a subset B of interconnected shielding electrodes. Along a row of nozzles, and under a given angular position from the wells of this row, the shielding electrodes of the subset A are alternating with the shielding electrodes of the subset B. This allows to feed different potentials to alternating nozzles and to tune the electrostatic deflection to the alternating flow pattern.
The method for operating the print head comprises the step of applying different electrical potentials to at least some of the shielding electrodes located at different angular positions adjacent to the same well while ink is being ejected from the nozzle in said well. This generates a lateral deflection of the ink.
In one embodiment, the method may include the following steps:
This makes it possible to displace the print head (or target) mechanically along one direction while scanning the other direction by means of the electrostatic deflection.
The invention will be better understood and objects other than those set forth above will become apparent when consideration is given to the following detailed description thereof. Such description makes reference to the annexed drawings, wherein:
Terms such as above, below, top, bottom are to be understood such that the nozzle is arranged at a level above the extraction electrodes, and the shielding electrodes are arranged at a level below the extraction electrodes. Advantageously, the axial direction of the nozzles is considered to define the vertical direction.
Horizontal and lateral designates directions perpendicular to the vertical direction.
A dielectric is a material having an electrical conductivity of 10−6 S/m or less.
It comprises a main body 6 with a plurality of structured layers. In particular, main body 6 comprises a nozzle layer 8 and a feed layer 10, with nozzle layer 8 being arranged, by definition, below feed layer 10.
Nozzle layer 8 farms a plurality of nozzles 12. Each nozzle 12 is arranged in a well 14, namely at a top end of well 14.
An ejection electrode 16 is provided for each nozzle 12 at a vertical level below nozzle 12. It is structured to electrohydrodynamically extract ink from nozzle 12 and accelerate it towards target 4 below.
Ejection electrode 16 is advantageously arranged, at least in part, around a well 14 and may in particular be annular, as shown in
A plurality of shielding electrodes 18a-18d are arranged at a bottom of nozzle layer 8 at a vertical level below the ejection electrodes 16. These shielding electrodes are used to reduce crosstalk between the nozzles 12, but they are also designed to laterally deflect the ink as it passes the space 22 between print head 2 and target 4. They are described in more detail in the next sections.
Nozzle layer 8 comprises a plurality of sublayers. In the present embodiment, these include:
The sublayers 8a-8d are advantageously dielectric layers, such as layers of inorganic material like silicon dioxide, silicon nitride, silicon oxynitride, or of organic materials like SU8 or BCB (Benzocyclobutene).
Each nozzle 12 forms a channel 23 extending between a bottomside opening of the nozzle and feed layer 10.
Nozzle layer 8 may have the same structure at a majority of all nozzles 12 or even at all of them. It may e.g. be mass-produced at a semiconductor foundry using known anisotropic etching and semiconductor patterning technologies.
Feed layer 10 is e.g. designed as an interposer layer as known from semiconductor manufacturing and it comprises a plurality of ink ducts 24a, 24b extending through it for feeding ink to the nozzles 12.
In the shown embodiment, the ink ducts comprise via sections 24a, with each via section extending upwards from a nozzle 12 into feed layer 10, where it is connected to an interconnect section 24b. The interconnect sections 24b extend horizontally and interconnect several via sections 24a, and they are in turn connected to one or more ink terminals 26 (
As can be seen from
A control unit 34 as shown in
Feed layer 10 can be used for customizing the function of the nozzles 12, e.g. for disabling some of them, e.g. by blocking or interconnecting the ink ducts to some of them and/or the electrical connections to their ejection electrodes 16.
The design of the shielding electrodes 18a-18d is best seen in
In the shown embodiment there are four shielding electrodes 18a-18d located at different angular positions around and below each well 14, with each of them belonging to a different subset of shielding electrodes.
For each well 14, there is a shielding electrode 18a located at angular position −X from the well, a shielding electrode 18b located at angular position +X from the well, a shielding electrode 18c located at angular position −Y from the well, and a shielding electrode 18d located at angular position +Y from the well.
The shielding electrodes 18a form a subset of electrically interconnected shielding electrodes. Similarly, the shielding electrodes 18b, 18c, and 18d form their own subsets, with the various subsets being mutually insulated.
The subset formed by the shielding electrodes 18a is a subset of a “first subset-type”. In a subset of this first subset-type, the shielding electrodes 18a are connected by interconnect lines 40a located at the vertical level of the shielding electrodes 18a that they are connecting, i.e. at the bottom side of first sublayer 8a.
Similarly, the subset formed by the shielding electrodes 18b is a subset of this first subset-type because they are interconnected by interconnect lines 40b located at the same level as the electrodes 18b.
The subset formed by the shielding electrodes 18c is a subset of a “second subset-type”. In a set of this second subset-type, the shielding electrodes 18c are connected by means of vias 42a to interconnect lines 44a located on a vertical level above the shielding electrodes 18c (cf.
Similarly, the subset formed by the shielding electrodes 18d is a subset of this second subset-type because they are interconnected by means of vias 42b to interconnect lines 44b located on a vertical level above the shielding electrodes 18d.
As shown in
The assembly of the shielding electrodes 18a-18d into subsets of interconnected electrodes allows to control a plurality of shielding electrodes with the same voltage and simplifies the wiring required in feed layer 10.
The assembly of the shielding electrodes 18a-18d into subsets of the first and the second subset-type simplifies the horizontal wiring for interconnecting the shielding electrodes of a given subset.
As can be seen in
Similarly, a row of wells 14 and nozzles 12 is located between the subsets of the shielding electrodes 18c, 18d. Hence, generating a voltage differential across the electrodes 18e, 18d of these two subsets allows to laterally deflect, along direction Y, the ink ejected at all these nozzles in the same manner.
Each subset of shielding electrodes is connected, by means of electrical tracks extending through at least some the layers of the print head, to a deflection terminal, one of which is shown under reference number 46 in
Similarly, control unit 34 is connected to target 4 or a substrate 48 of target 4, for controlling the electrical field in space 22 between print head 2 and target 4 (cf.
In the embodiment of
In more general terms, at least part of the wells 14 may have exactly four shielding electrodes 18a-18d located adjacent to the well 14.
It is not strictly necessary to have four shielding electrodes 18a 18d adjacent to each well 14 and nozzle 12. In the embodiment of
Hence, in this embodiment, at least part of the wells 14 have exactly three shielding electrodes 18a, 18b, 18d located adjacent to the well 14.
When comparing
In the shown embodiment, the shielding electrodes 18a form a subset of the first subset-type and so do the shielding electrodes 18b, i.e. both these subs sets are interconnected by interconnect lines 40a, 40b on the same vertical levels as the shielding electrodes 18a, 18b themselves. On the other hand, the shielding electrodes 18d form a subset of the second subset-type, i.e. they are interconnected by vias 42 connected to interconnect lines (similar to the interconnect lines in 46a of
Advantageously, when there are only three shielding electrodes per well 14 and nozzle 12, one of the shielding electrodes, namely shielding electrode 18a in the shown embodiment, forms a reference electrode and is the largest electrode, while the other two shielding electrodes, namely electrodes 18b and 18d in the shown embodiment, form counter-electrodes and are smaller.
In particular, the reference electrode extends around 180°±20° of the well 14 and nozzle 12 (see angle α1 of
In this way, the electric field generated between all three electrodes can be regarded as a superposition of a x-deflecting field and a y-deflecting field, originating from the voltage applied between reference electrode 18a and electrode 18b, and from the voltage applied between reference electrode 18a and electrode 18d, respectively. However, it is of course possible to form other electrode shapes, e.g. three electrodes of equal size distributed around the well, advantageously with each electrode extending around 120°±20° of the well 14 and nozzle 12. In this case, however, it may be more difficult to evaluate a certain x-y-deflection value from the voltages applied to the different electrodes.
In contrast to the second embodiment, however, there are two subsets of the second subset-type, with one of these subsets being foamed by the shielding electrodes 18e and the other of these subsets being formed by the shielding electrodes 18f.
On the other hand, only the shielding electrodes 18a belong to a subset of the first subset-type (even though they may also belong to a subset of the second subset-type).
The print head 2 may comprise a plurality of ventilation openings 50a, 50b. These include blow openings 50a and suction openings 50b.
The blow openings 50a are adapted to blow gas into space 22, and the suction openings 50b are adapted to suck gas from space 22, thereby ventilating space 22 for improved ink drying.
As shown in
Ventilation source 56a is adapted to blow a gas through the ventilation ducts 52a, 54a to the blow openings 50a. Ventilation sink 56b is adapted to suck gas from the suction openings 50b through the ventilation ducts 52b, 54b.
In one embodiment, all blow openings 50a are connected to the same ventilation source 56a, and all suction openings 50b are connected to the same ventilation sink 56b.
In a compact embodiment, where at least some of the nozzles 12 and ventilation openings 50a, 50b are arranged in a regular two-dimensional matrix as e.g. shown in
In that case, an alternating flow pattern as illustrated by the arrows 58a, 58b, 60a, 60b in
Irrespective of the flow direction, the velocity at the nozzle axis becomes zero, which means that the trajectory of droplets that are not actively deflected will not be affected by the alternating flow pattern. However, when deflecting the ink by means of the shielding electrodes, the droplets enter into a non-zero flow field, which can lead to asymmetries in the flight trajectory that may have to be compensated.
For example, in the embodiment of
To compensate for that, alternating auxiliary voltages V2 and −V2 can be applied along direction Y across the wells 14.
To be able to apply such alternating auxiliary voltages V2 and −V2, there should at least be a subset A of shielding electrodes 18f and a subset B of shielding electrodes 18h. Along a row of nozzles (namely a row extending along direction Y of
In other words,
If it is desired to not only deflect the ink into direction X but also into direction Y, the shielding electrodes at the right of the wells 14 of
In order to deflect the inks along the horizontal directions X and/or Y, different electrical potentials can be applied to the shielding electrodes located at different angular positions adjacent to some or all of the wells.
Typical voltages applied to the various electrodes are e.g. a combination of one or more of the following:
One important application is depicted in
At the same time, the ink is deflected by means of the shielding electrodes in a direction B, which is perpendicular (or transversal) to direction A.
Hence, it becomes possible to print at positions that are not directly below nozzle 12.
Advantageously, the lateral displacement velocity of the ink position on the target in direction B by means of the electrostatic deflection is faster than the lateral displacement of the ink position on the target in direction A by means of mechanical displacement, in particular at least 10 times faster. This allows to generate a high resolution print along both directions without fast mechanical displacements.
This technique allows to move print head 2 without acceleration (or without large acceleration) along A while the point of impact oscillates along direction B.
If print head 2 moves steadily along direction A and it is desired to generate series of dots exactly along direction B, i.e. a direction exactly perpendicular to A, as shown in
Advantageously, the voltages along directions A and B would be sawtooth-shapes voltages, i.e. each of them changes from a first voltage to a second voltage, in particular continuously, during a first time interval T1, and then goes back to the first voltage in a second time interval T2, with T1>>T2, in particular T1>10·T2.
It must be noted that, in order to implement the technique of
In certain situations it can be beneficial that not all nozzles on the print head are individually controllable, but instead the ejection electrodes 16 of some nozzles may be interconnected and are therefore ejecting droplets always at the same time. Print heads with such characteristics can be used if a regular structure 64 is to be printed. In this case, the interconnected nozzles 12 on the print head may be arranged in reference to a regular structure 64 that needs to be printed on. When initialing printing, the number of interconnected nozzles 12 will define the number of regular structures 64 that is printed on at the same time. However, when doing so, one implies that the reference spacing S between neighboring nozzles 12 is exactly the same as the spacings S′ defining the regular structure 64. Due to various reasons, these distances may be different though, so another application of deflection by means of the shielding electrodes is depicted in
For example, print head 2 is supposed to print onto a regular structure 64 contained on substrate 4 with a spacing S′ along direction D while it is moving in a horizontal forward direction perpendicular to D, i.e. in a direction perpendicular to the plane of
However, if the shielding electrodes are used to laterally deflect the ink (i.e. along direction D), this can be achieved without laterally displacing print head 2 along direction D.
In order to print structure 64, the component of the electric field along direction D is statically varied along direction D in order to match the spacing of the positions of impact of the ink on target 4 with the spacing S′.
In the example of
This is particularly important when the print head has a large extension along direction D. In that case, different temperatures at print head 2 and target 4 combined with different thermal dilatations of print head 2 and target 4 may affect the spacings S and S′ differently. Hence, even if at one set of temperatures, the spacing S and S′ were matched perfectly, a change of temperature would lead to a mismatch.
For example, the centermost nozzles 12 of print head 2 may be well-aligned over the structure 64. In that case, ink of the outermost nozzles 12 will need a lateral correction.
Hence, along direction D, there are advantageously several different subsets of shielding electrodes, which allows to apply a different voltage differential over the nozzles at the center and those further away (along direction D) from the center, thereby adapting the deflection along direction D.
In some cases, it may e.g. be sufficient to use the same voltage differential over e.g. all electrodes within a region of 10 mm. If the printing head has an to extension, along D, of e.g. 30 mm, three regions of different subsets may in that case suffice.
The correction depicted in
In the embodiments above, there is at least one subset of shielding electrodes of the first subset-type, i.e. they are connected by interconnect lines located on the same vertical level as the shielding electrodes themselves. Alternatively, though, there may only be subsets of shielding electrodes of the second subset-type, i.e. there are no interconnect lines 40a, 40b on the level of the shielding electrodes 18a-18f. Rather, all shielding electrodes 18a-18f are connected to vias (such as the vias 42a, 42b) and to interconnect lines (such as lines 44a, 44b of
In the embodiments above, there are three or four shielding electrodes at each nozzle 12 and well 14. If deflection only along one direction is desired (such as direction D of the application of
As already mentioned, the shielding electrodes should cover a large percentage of the area around each well 14, e.g. at least 90% of its circumference, in order to shield the field of the ejection electrode 16 and prevent crosstalk between neighboring nozzles 12.
As mentioned above, the shielding electrodes of a given subset can be interconnected at the vertical level of the electrodes or at the vertical level of the ejection electrodes. However, in particular if the subsets have a more complex geometry, such as the one shown in
While there are shown and described presently preferred embodiments of the invention, it is to be distinctly understood that the invention is not limited thereto but may be otherwise variously embodied and practiced within the scope of the following claims.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2019/080849 | 11/11/2019 | WO |