Crucible cover for coating using electron beam source

The two-piece crucible cover system addresses cross-contamination in vacuum coating systems by ensuring contact between the cover insert and crucible, maintaining purity and control over coating thickness, and reducing maintenance.

JP7811568B2Active Publication Date: 2026-02-05FERROTEC (USA) CORP
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Patent Information

Application Number
JP2023200172
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-11-27
Publication Date
2026-02-05
Estimated Expiration
2038-11-30

AI Technical Summary

Technical Problem

Existing vacuum coating systems face issues with cross-contamination between crucibles due to the movement of coating material, which contaminates non-active containers and reduces the purity and control of coating thickness.

Method used

A two-piece crucible cover system where the cover insert contacts the crucible surface, allowing for a reduced gap and separation between active and non-active crucibles, minimizing contamination by vaporized material.

Benefits of technology

The system effectively prevents cross-contamination by closing the gap between crucibles, maintaining purity and control over coating thickness, and reduces maintenance needs by allowing easy cleaning and replacement of the cover insert.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a crucible cover, a vapor deposition source assembly, and a crucible covering system for solving a cross contamination between crucibles of a vapor deposition material.SOLUTION: A cover configuration is configured by at least two components for covering a crucible inside an electron beam source assembly. A cover 120 has a cover body 122 and a cover insertion part 150 that is separated from the cover body and carried by the cover body in a case where the cover body is lifted or lowered. This configuration allows lowering the cover insertion part until the cover insertion part stands still over the crucible. If the cover insertion part contacts the crucible, the cover body can be lowered a little more because the cover insertion part can partially be separated from the cover body, enabling the cover insertion part to contact the body that surrounds the crucible and is cooled by water while an insertion piece to the crucible contacts the crucible well.SELECTED DRAWING: Figure 3
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Description

Detailed Description of the Invention

[0001] [Background of the invention] 1.Technical Field The present invention relates generally to a crucible cover for an electron beam source having multiple housings for use in a vacuum coating system. Specifically, the present invention relates to a crucible cover that heats the housing of an individual crucible containing a coating material to produce a coating vapor. Even more particularly, the present invention relates to a cooperating cover and crucible combination configured to isolate the heated housing from all other housings.

[0002] 2. Description of the Prior Art Vacuum coating or deposition of materials is a process commonly used in the manufacture of a variety of products, including but not limited to semiconductors and optical components, and in forming thermal barrier layers on high-temperature components. One method for coating materials with very low vapor pressures, such as metals and ceramics, involves placing the coating material and the workpiece in a vacuum chamber and reducing the pressure (usually 10 -7 ~10 -4 The technique involves heating the material at high pressures (in the Torr range). The resulting coating vapor flows outward from the material, coating the workpiece surface. Due to the low vacuum chamber pressure, the vaporized coating material travels largely unimpeded, following a nearly line-of-sight trajectory. The most common sample heating method uses directed electron beam energy.

[0003] Many manufacturing processes involve depositing multiple layers of coatings made from multiple materials. It is generally important to be able to control the purity and thickness of the coating to achieve the desired results. Furthermore, many of the benefits of depositing multiple coating layers on a workpiece are realized when the coating process is performed sequentially under vacuum. The trend in coating technology has been toward achieving higher purity, more uniform, and more controllable coating thicknesses for multiple materials. One continuous coating system describes a mechanism that sequentially moves multiple crucible housings along a single heat source within a single vacuum chamber. While this mechanism was used with electrical resistance heating, the same mechanism works equally well with other heat sources, such as electron beams. Using an electron beam allows for positioning using a controllable magnetic field, offering the option of holding the sample in a preset position while deflecting the heat source.

[0004] The main problem is cross-contamination between crucibles. Within this multi-container heat source assembly, one container is considered the active container at any given time. This active container is exposed so that the electron beam from the emitter assembly can be directed at it. The purpose is to heat, melt, and vaporize the quantity of material contained within this active container. The remaining non-active containers are positioned behind covers. The covers act as a shield, partially separating these non-active containers from the floating material that is vaporized and exits the active container.

[0005] The cover of this current art electron beam source assembly is either integrated into the upper body of the electron beam source assembly, fastened to the top of the electron beam source assembly, suspended from another structure, or attached to a movable structure. A movable structure allows the cover to move up and down over the crucible or tilt up and down. This movement widens and narrows the gap between the cover and the crucible. This movement allows the gap between the cover and the crucible to widen during crucible rotation and narrow during material deposition. When the cover is moved to its lowest position, this movement also allows the stepped portion of the cover to extend downward beyond the top surface of the crucible. Despite this configuration, most of the coating material is directed away from the source, and some of the material is diffused. Some of the coating material inevitably returns to the source and contaminates other raw materials, reducing the purity of the coating material and limiting the usefulness of multiple coating chambers.

[0006] One solution to the contamination problem is to implement a non-contact crucible cover or movable lid with an opening that allows vapor from the heated sample to coat the workpiece while shielding all contamination of other samples. A typical cover configuration is shown in U.S. Patent No. 4,748,935 to Wegmann, which discloses an electron-beam heated vapor source with such a cover. It consists of a fixed, planar cover and a multi-compartment crucible, where each compartment can become a heated compartment by rotating each sample through the heating zone. A narrow gap separates the cover and crucible, limiting but not eliminating line-of-sight contamination. This configuration requires a significant degree of maintenance because coating buildup on the lid interferes with the desired operation of the cover. This type of cover also potentially introduces new contamination pathways: cover deposits can rub off or flake off into the crucible containing other materials. Nearly all known covers in the prior art rely on extremely tight tolerances to reduce, if not eliminate, line-of-sight contamination. Unfortunately, this approach still presents a challenge as it provides a pathway for contamination.

[0007] Some of the limitations of non-contact covers are addressed in U.S. Pat. No. 4,944,245 to Stoessl et al. According to Stoessl et al., the cover contacts the crucible surface around the heated sample to prevent material from flowing from the heated sample to any unheated samples. The cover and crucible are connected so that rotation of the crucible lifts the cover to allow sample selection. While this approach reduces contamination from vapors flowing from the heated sample to the unheated samples, those skilled in the art are aware of the rapid accumulation of coating material on cover and crucible surfaces within line of sight, particularly those near the heated sample. Furthermore, the lifting mechanism described by Stoessl et al. occupies a large portion of the crucible surface area, limiting the number of samples that can be accommodated. The coupled rotation-lifting mechanism of Stoessl et al. also creates multiple contacts per material selection if rotation is not performed between adjacent crucibles, potentially increasing the chance of cross-contamination.

[0008] In both the Wegmann and Stoessl et al. configurations, deposits tend to rapidly build up thick layers of coating material. The deposits easily scrape off or flake off during crucible rotation, contaminating adjacent samples. Furthermore, in both of these references, deposits can penetrate the small tolerances between the cover and crucible, requiring equipment maintenance that limits the ability of the cover mechanism to operate properly.

[0009] An improvement over the Wegmann and Stoessl et al. designs is provided by the apparatus disclosed in U.S. Patent No. 6,902,625 to Ramsay, which is incorporated herein by reference in its entirety. Ramsay discloses a deposition source capable of accommodating a variety of coating materials while reducing contamination between materials. The Ramsay deposition source utilizes a non-contact baffle structure that is significantly less susceptible to unwanted deposits. Figures 1 and 2 illustrate the Ramsay deposition source 10. Mounted within the source housing 12 is a crucible 30 having six crucible receiving compartments 32.

[0010] The intersections of the reservoirs 32 on the crucible surface 34 define reservoir edges 33 around the periphery of each reservoir. The crucible is mounted in the evaporation source for rotation about the crucible's axis of rotation 35. An electron beam source (not shown) within the evaporation source has an outlet 40 from which an electron beam 42 emerges. The beam is directed from the outlet to the material heating location 35 by magnets (also not shown) within the evaporation source. Deflection of the electron beam for evaporation heating and sweeping of the beam for controllable heating are well known in the art. Crucible Lid Alternatively, cover 20 is positioned over each housing and has a cover opening 22 formed by a protrusion or lip 24. Crucible 30 can be rotated to open any one of the housings at a time. The uncovered housings are aligned with heating position 35. Position 35 is fixed relative to electron beam 42, and each crucible housing 32 is positionable near position 35 for sweepable heating of the exposed material.

[0011] This is shown in greater detail in the exploded perspective view of Figure 2, where the cover has been removed from the evaporation source. Each crucible housing 32 has a depression, recess, or groove 36 located in the crucible surface 34, which is between each housing and every other housing. The three-dimensional shape of the groove 36 matches the shape of the rim 24 around the heated housing, and when mated together, form an interlocking, non-contacting baffle.

[0012] [Summary of the Invention] Prior art solutions to reduce cross-contamination between chambers in multi-chamber evaporation sources have relied on either closely spaced planar covers or crucible-shielded covers, which rely on maintaining extremely tight tolerances in areas where tolerances are difficult to maintain due to the rapid buildup of unwanted deposits.

[0013] The present invention avoids the problems of prior art systems by providing a two-piece crucible cover that contacts the crucible surface but is easily serviceable in the event of an accumulation of unwanted deposits on the cover.

[0014] The present invention provides a cover arrangement consisting of at least two parts for covering a crucible within an electron beam source assembly. This arrangement allows a sealing portion (cover insert) to be separated from and carried by the cover body when the cover body is raised or lowered. This arrangement also allows the cover insert to be lowered until it rests on the crucible. This significantly reduces or eliminates the gap between the crucible and the cover. Once the cover insert and the crucible make contact, the cover insert is partially separable from the cover body, allowing the cover body to be lowered a small distance further and contact the water-cooled body surrounding the crucible while ensuring good contact of the crucible insert with the crucible. Closing this gap helps prevent vaporized material from flowing from the active crucible housing into the non-active housing located below the cover during the deposition process.

[0015] The present invention achieves these and other objects by providing a crucible cover for a multi-reservoir vapor source, in which vapor is generated by an electron beam directed at the uncovered crucible reservoir. The cover body has a cover surface, a cover opening, and a cover edge along the cover opening. The cover surface faces a crucible having a crucible surface and having multiple reservoirs formed therein for containing coating material to be deposited. The crucible cover is automatically lifted, the crucible is rotated, and the crucible cover is lowered to align one of the multiple reservoirs with the cover opening, thereby covering or uncovering the reservoirs. The cover insert has an insert bottom surface and an open area that coincides with the cover opening. The cover insert is removably coupled to the cover body, the insert bottom surface extending below the cover surface, and the cover insert is connected along the edge of the cover opening. The cover insert only covers the edge of the cover opening from the inside, but does not seal the cover opening. When the cover body is lowered relative to the crucible and the cover insert comes into contact with the crucible, the cover insert becomes partially separated from the cover body.

[0016] In another embodiment, the cover inserts have features that separate each enclosure from adjacent enclosures, including separating uncovered enclosures from covered enclosures by contact between the cover insert and the crucible, to minimize contamination from heated steam and prevent deposition on the cover insert and crucible from resulting in cross-contamination between enclosures.

[0017] In another embodiment, the cover insert has a V-shaped insert body having an inner edge, an outer edge, and a top surface. In another embodiment, the cooperating surface contours include a crucible barrier extending from the periphery of the crucible housing toward the cover insert and a mating protrusion on the cover insert surface that projects toward the crucible barrier.

[0018] In yet another embodiment, the cooperating surface contours include at least one recess on the crucible surface and a mating protrusion on the cover insert. In yet another embodiment, the cooperating surfaces closest to the covered housing comprise a groove on the crucible surface and a mating protrusion on the cover insert.

[0019] In yet another embodiment, the cover insert has a V-shaped insert body having an inner edge, an outer edge, and a top surface. In one embodiment, the upper surface tapers in thickness from the outer edge to the inner edge.

[0020] In one embodiment, the insert bottom surface of the cover insert has a raised bottom with an insert bottom contact surface that is recessed a predetermined distance from the inner edge. In one embodiment, the bottom insert surface of the cover insert is recessed back from the outer surface to form a shelf.

[0021] In one embodiment, the cover opening has a recess along the cover edge that forms a cover body shelf that matches the shelf of the cover insert, thereby matingly connecting and partially separating with the cover insert.

[0022] In one embodiment, the cover surface of the cover body has structural features that are capable of mating contact with corresponding structural features of the crucible, and the contact between the cover surface and the crucible further separates each receptacle from adjacent receptacles, including separating uncovered receptacles from covered receptacles.

[0023] In another embodiment, a vapor source assembly is disclosed having multiple covered receptacles, for generating vapor by an electron beam that can be directed toward an uncovered crucible receptacle. The assembly includes a housing, a crucible rotatably mounted within the housing, multiple receptacles within the crucible, and a cover having a cover body and a cover insert, the cover body having a cover surface and a cover opening, the cover surface facing the crucible, the cover insert having an insert bottom surface and an open area that matches the cover opening, the cover insert being removably coupled to the cover opening, the insert bottom surface extending below the bottom surface of the cover surface so that the cover insert does not block the cover opening. When the cover body is lowered relative to the crucible and the cover insert contacts the crucible, the cover insert becomes partially detached from the cover body, and there is a matching pair of cooperating surfaces on the cover insert and on the crucible surface between each receptacle. The receptacles are each configured to contain a coating material, and the crucible is rotatable to bring either receptacle into position to receive energy from the electron beam.

[0024] In another embodiment, a crucible covering system for a vapor source having multiple chambers is disclosed. The system includes a crucible having an axis and multiple chambers for containing a material to be deposited, the crucible having a crucible surface between each chamber; a cover extending along a plane perpendicular to the axis and covering all but at least one selected one of the multiple chambers; and a matching pair of cooperating surfaces on the cover insert and on the crucible surface between each chamber. The cover includes a cover body having a cover opening for exposing one of the multiple chambers, and a cover insert having an insert bottom surface and an open area corresponding to the cover opening, the cover insert being detachably coupled to the cover body along a cover edge, the insert bottom surface extending below the cover surface. When the cover body is lowered relative to the crucible and the cover insert contacts the crucible, the cover insert becomes partially detached from the cover body.

[0025] One advantage of the present invention is that when the cover body is fully lowered, the cover insert remains on, in, or around the contour of the cover body, allowing the cover insert to be partially detached from the cover body and probed for height and level. Alternatively, the cover insert can be partially secured to the cover body using one or more spring-like elements that can exert additional downward force on the cover insert, thereby increasing the force on the crucible.

[0026] Another advantage of the present invention is that when the cover body is lowered, the cover insert also lowers until it contacts the crucible. At this point, the cover insert stops its downward movement and remains in contact with the crucible, while the cover body continues downward to its rest point. Note that the figures illustrate the cover insert contacting the convex wall of the crucible (which defines the web structure) that is positioned at a height above the crucible surface. This cover insert concept is equally applicable to other configurations, such as a cover insert that rests on a surface that is approximately horizontal to the crucible surface, or even a surface that is lower than the crucible surface if the web structure is sufficiently short or absent.

[0027] A further advantage of the present invention is that the partial separation between the cover body and the cover insert reduces the need for precise clearance and parallelism between the cover and the crucible to minimize or eliminate gaps between them. This is achieved by designing the cover body to have sufficient overtravel to ensure that the cover insert makes contact with the crucible even with wide dimensional variations during installation of the vapor source assembly. This also allows for easier reassembly after maintenance of the vapor source assembly. Another advantage of the present invention is that the cover contacts the area of ​​the crucible that separates the working portion from the non-working portion. This contact separates and protects the non-working portion from evaporants emanating from the working portion by closing the cover / crucible gap that would otherwise exist between the working and non-working portions. This prevents contamination of material in the non-working portion with material from the working portion.

[0028] Yet another advantage of the present invention is the ease with which the cover insert can be removed for cleaning or replacement. Over time, material vaporized from the active containment tends to accumulate on the cover in the vicinity of the active containment. At some point, this accumulation must either be mechanically removed or the cover replaced. With the present invention, the cover insert absorbs this accumulation while the cover body remains substantially free of coating buildup. This allows for a shorter cleaning process and / or replacement of the cover insert with less downtime. A used cover insert can then be cleaned and grouped with other cover inserts, thereby providing economies of scale. You can make use of this.

[0029] Another advantage of the present invention is that the cover insert can be made of a different material than the cover body, if desired, making the insert less susceptible to wear and deformation. Conversely, the cover body can be made of a material with a higher thermal conductivity, such as copper, for better cooling. Even if the cover body is made of a softer material, it does not need to be cleaned as frequently because it is not directly coated by the operating housing, resulting in a longer service life.

[0030] Another advantage of the present invention is that improved reliability and time between maintenance reduces the amount of waste material and reduces the operating costs of the coating equipment. Further advantages of the present invention are that it is simple and inexpensive to manufacture and maintain, and easy to use. [Brief explanation of the drawings]

[0031] [Figure 1] FIG. 1 is a perspective view of a conventional electron beam evaporation system. [Figure 2] FIG. 2 is an exploded view of a conventional electron beam evaporation system. [Figure 3] FIG. 3 is an exploded view of a first embodiment of the present invention showing an electron beam evaporation system having a two-piece crucible cover. [Figure 4] FIG. 4 is a perspective view of the bottom of the first and second embodiments of the present invention showing the cover lifting mechanism. [Figure 5] FIG. 5 is a side view of the first embodiment of the present invention showing the movement of the cover. [Figure 6] FIG. 6 is a right side perspective view of a first embodiment of the present invention showing a two-piece crucible cover with the cover body and cover insert in the upper position. [Figure 7] FIG. 7 is a plan view of FIG. [Figure 8] FIG. 8 is a bottom view of FIG. [Figure 9] FIG. 9 is a right side view of FIG. [Figure 10] FIG. 10 is a front view of FIG. [Figure 11] FIG. 11 is a right perspective view of the first embodiment of the present invention showing the cover insert in a lowered position. [Figure 12] FIG. 12 is a right side view of FIG. 11 showing the cover in an upper position relative to the crucible, allowing rotation of the crucible. [Figure 13] 13 is a cross-sectional view of the right side of FIG. 6 showing the cover body and the cover insert in a partially downward position relative to the crucible, with the cover body and cover insert still coupled together when the cover insert has made initial contact with the crucible but the cover body is not in contact with the crucible. [Figure 14]14 is a right-hand cross-sectional view of FIG. 11 showing the cover body separated from the cover insert as the cover body continues to lower into contact with the copper coil housing and the cover insert remains in contact with the crucible. [Figure 15] 15 is a perspective view of the upper side of the cover inserting portion of FIG. 6. FIG. [Figure 16] FIG. 16 is a plan view of FIG. [Figure 17] 17 is a perspective view of the underside of the cover inserting portion of FIG. 6. FIG. [Figure 18] FIG. 18 is a bottom view of FIG. [Figure 19] 19 is a perspective view of the upper side of the cover body of FIG. 6. FIG. [Figure 20] FIG. 20 is a plan view of FIG. [Figure 21] FIG. 21 is a bottom view of FIG. [Figure 22] FIG. 22 is a right side view of FIG. [Figure 23] FIG. 23 is a right side perspective view of a two-piece crucible cover according to a second embodiment of the present invention, showing the cover body and cover insert in the upper position. [Figure 24] FIG. 24 is a plan view of FIG. [Figure 25] FIG. 25 is a bottom view of FIG. [Figure 26] FIG. 26 is a right side view of FIG. [Figure 27] FIG. 27 is a front view of FIG. [Figure 28] FIG. 28 is a right-side perspective view of the second embodiment of the present invention showing the cover insert in the lower position. [Figure 29] FIG. 29 is a right side view of FIG. 28 showing the cover in an upper position relative to the crucible, allowing rotation of the crucible. [Figure 30]Figure 30 is a right-side cross-sectional view of Figure 28 showing the cover body and the cover insert in a partially downward position relative to the crucible, with the cover body and cover insert still connected when the cover insert has made initial contact with the crucible but the cover body is not in contact with the crucible. [Figure 31] FIG. 31 is a right-side cross-sectional view of FIG. 28 showing the cover body separated from the cover insert as the cover body continues to lower into contact with the copper coil housing and the cover insert remains in contact with the crucible. [Figure 32] 32 is a perspective view of the upper side of the cover insert portion of FIG. 23. FIG. [Figure 33] FIG. 33 is a plan view of FIG. [Figure 34] 34 is a perspective view of the underside of the cover inserting portion of FIG. 23. FIG. [Figure 35] FIG. 35 is a bottom view of FIG. [Figure 36] 36 is a perspective view of the upper side of the cover body of FIG. 23. FIG. [Figure 37] FIG. 37 is a plan view of FIG. [Figure 38] FIG. 38 is a bottom view of FIG. [Figure 39] FIG. 39 is a right side view of FIG. [Figure 40] FIG. 40 is a perspective view of the heated enclosure of the present invention with the cover in an upper position over the crucible. [Figure 41] FIG. 41 is a perspective view of the heated enclosure of the present invention with the cover in the lowered position and the cover insert in contact with the crucible. [Figure 42] FIG. 42 is a perspective view of the first embodiment of the present invention showing the cover and crucible. DETAILED DESCRIPTION OF THE INVENTION

[0032] [Detailed Description of the Invention] The present invention is illustrated in Figures 3-42. Figures 3-5 illustrate one embodiment of a vapor deposition source 100 of the present invention. A crucible 130 having six crucible receiving compartments 132 is mounted within the source housing 112. Various crucible materials and construction techniques are known to those skilled in the art, including, but not limited to, crucibles incorporating water cooling and made of high thermal conductivity, low melting point materials such as copper or aluminum, crucibles constructed of high melting point materials such as graphite, tungsten, or molybdenum, and crucibles with graphite liners or surface oxidation to limit the rate of thermal conductivity from the vapor to the crucible surface.

[0033] The intersections between the reservoirs 132 on the crucible surface 134 define reservoir edges 133 around each reservoir. The crucible 130 may have more or fewer reservoirs; the selection of six reservoirs is merely illustrative. The crucible is mounted in the evaporation source for rotation about the crucible's axis of rotation 235. An electron beam source (not shown) within the evaporation source 100 has an outlet 140 from which an electron beam 142 emerges. The beam is directed from the outlet to a material heating location 135 by magnets (also not shown) within the evaporation source. Deflection of electron beams for evaporation heating and sweeping of the beam for controllable heating are well known in the art. With such a deflection system, the heating location 135 typically comprises a finite area within the heated reservoir edges. The crucible lid or cover 120 includes a cover body 122 and a cover insert 150. The cover 1 The crucible 30 includes a crucible housing 32 having a cover opening 124 formed by a cover insert 150 above each housing 132, extending along a plane perpendicular to the axis and covering all but at least one selected one of the housings 132. The crucible 30 can be rotated to open any one of the housings 132 at a time. The uncovered housing is aligned with a heating position 135 and is therefore referred to as the "heated housing," while all other housings are referred to as "unheated housings." The position 135 is fixed relative to the electron beam 142, and each of the crucible housings 32 is positionable near the position 135 for sweepable heating of the exposed material. The area occupied by the heating position 135 need not be larger than any one of the housing edges 133 to provide controlled heating of the material within the housing.

[0034] Each crucible housing 132 has a crucible surface portion 134a that rests on the crucible surface 134, and this portion is between each housing and all other housings. The crucible surface portion 134a may be flush with the crucible surface 134, a raised surface that is parallel to but above the crucible surface 134, or a lower surface that is parallel to but below the crucible surface 134. The crucible surface portions 134a surrounding each housing may be separate (unconnected) from the other crucible surface portions 134a or connected to each other, and may be contained within the crucible surface 134 or extend beyond the edge of the crucible surface 134. The crucible surface portions 134a have a shape that matches the shape of the bottom surface 160 of the cover insert 150 around the periphery of the heated housing, and when mated, form a matching contact surface. When positioned in this manner, the bottom surface 160 of the cover insert 150 and the crucible surface portion 134a cooperate to form a contact barrier that blocks the line of sight between the heated enclosure and all unheated enclosures. In other words, there is a matching pair of cooperating surfaces on the cover insert and the crucible surface between each enclosure.

[0035] A rotation mechanism (not shown) for rotating the crucible 130 allows selection from among the multiple housings 132, and a lifting mechanism 250 allows rotation without contact between the cover 120 and the crucible 130. The rotation mechanism connects the crucible 130 to the evaporation source housing 112 (as shown in FIG. 4 ) via a copper coil housing 113 located between the two magnetic pole plates 114 of the evaporation source housing 112, and is controlled by an external device (not shown) to rotate the crucible 130 around a rotation axis 235. By controlling the rotational position of the crucible 130, any of the housings 132 can be brought to the heating position 135. The rotation mechanism can be configured with an AC or DC motor or a rotary or linear pneumatic actuator, and may have sensors attached to the crucible 130 and housing 112 to detect the rotational position. The lifting mechanism 250 has an actuator 252 and a rod 254 and performs a lifting motion on the cover 120. The crucible 130 and electron beam source exit 140 are also shown. In one embodiment, the actuator 252 is a single-acting pneumatic actuator with a spring return housed in a bellows, which forces the cover to normally be in the upper position. In another embodiment, the actuator 252 is double-acting, providing both lifting and lowering motion. Other possible lifting mechanisms include, but are not limited to, a lead screw, a piezoelectric actuator, a bimetallic element, a magnetic solenoid, and a linear motor.

[0036] 4 shows a bottom view of the lifting mechanism 250, with one pair of rods 254 extending upward and through the source housing 112 to contact the cover 120, and a third rod 254 external to the source housing 112, extending from the actuator 252 directly to the cover 120. The motions involved in lifting the cover are better illustrated in the side view of FIG. 5. The cover lifting components (actuator 252) are depicted in solid and dotted lines. , rod 254, and cover 120 illustrate extreme positions of movement. Cover 120 is connected to actuator 252 via rod 254 at the corner closest to the electron beam source and via a third rod 254 at the point on cover 120 farthest from the electron beam source. In the normally upright position, shown in dotted lines, bottom surface 152 of cover insert 150 releases the crucible occlusion, and in the forced down position, shown in solid lines, cover insert 150 fully engages crucible surface 134 or crucible surface portion 134a. Combining rotation and lifting mechanisms is generally useful for rotary crucibles, providing a multi-receptacle approach with both covered and uncovered receptacles.

[0037] Figure 6 is a perspective view of cover 120 in the upper position, meaning that cover insert 150 is in the lowered or coupled position relative to cover body 122. This position is reached when lifting mechanism 250 lifts cover 120 away from crucible 130. Figure 7 is a top view of cover 120. Both Figures 6 and 7 show connection locations 127 where rods 254 are respectively connected to lift cover 120.

[0038] FIG. 8 is a bottom view of the cover 120 of FIG. 7. The cover 120 has a bottom surface 126 and a plurality of bottom surfaces 126a that interact with the crucible surface portion 134a and the copper coil housing 113 of the crucible 130. The cover insert 150 also has an insert bottom surface 154 that interacts with the crucible surface portion 134a. FIG. 9 is a side view of FIG. 6 showing the cover 120 with the cover insert 150. FIG. 10 is a front view of the cover 120 shown in FIG. 6.

[0039] FIG. 11 is a perspective view of the cover 120 with the cover insert 150 in a lower position relative to the cover body 122. This position is reached when the lifting mechanism 250 lifts the cover 120 away from the crucible 130, allowing rotation of the crucible 130. FIG. 12 is a cross-sectional side view of the cover 120 in an upper position relative to the crucible 130. As shown, neither the cover body 122 nor the cover insert 150 contact any part of the crucible 130. In this position, the crucible 130 can be rotated to position one of the crucible receiving sections 132 in alignment with the cover opening 124. FIG. 13 is a cross-sectional side view of the cover 120 being lowered toward the crucible 130, with the cover insert 150 just beginning to contact the crucible surface 134 or crucible surface portion 134a as the cover is lowered by the lifting mechanism 250. In Figure 14, the lifting mechanism continues to lower the cover 120 until the bottom surface 126 or bottom portion 126a of the cover contacts the crucible surface 134 or crucible surface portion 134a and / or the cover bottom surface 126 contacts the copper coil housing 113. As can be seen between Figures 13 and 14, the movement of the cover body 122 caused by the cover body 122 being lowered into contact with the crucible surface 134 causes the cover insert 150 to contact the crucible surface 134 and stop its downward movement, but the cover body 122 continues its downward movement. Figures 13 and 14 show how the cover insert 150 moves relative to the cover body 122 when the cover body 122 is fully lowered, such that the cover insert 122 is partially detached from the cover body 122 and seeks its height and level.

[0040] 15-18, various cover inserts 150 are depicted, illustrating the structural features that separate each enclosure from adjacent enclosures, including the contact between the cover insert and the crucible that separates uncovered enclosures from covered enclosures. FIG. 15 shows a top perspective view of a V-shaped insert body 160 having an inner edge 163, an outer edge 164, and a top surface 162. In one embodiment, top surface 162 The thickness of the cover insert 150 tapers from the outer edge 164 to the inner edge 163 such that the outer edge 164 is thicker than the inner edge 163. FIG. 16 is a top view of the cover insert 150. FIG. 17 is a bottom perspective view of the insert body 160. The insert body 160 has an insert bottom surface 168 that is recessed back from the outer edge 164 to form a shelf 166. The bottom surface 168 extends along a V-shape the entire length of the insert body 160. The insert bottom surface 168 further has a raised bottom portion 154 that extends along a portion of the arm of the V, and the bottom portion 154 is recessed a predetermined distance from the tapered edge 163 to provide an insert bottom contact surface 154a that exposes a portion of the non-contact surface of the bottom surface 168. When cover 120 is lowered sufficiently to contact crucible 130, insert bottom contact surface 154a contacts crucible surface 134 or crucible surface portion 134a. FIG.

[0041] FIG. 19 is a perspective view of the cover body 122. The cover body 122 has a top surface 121, a cover opening 123, and a cover edge 123a. Recessed from the top surface 121 along the cover edge 123a is a cover body ledge 122a that mates with the ledge 166 of the cover insert 150. It should be noted that when the cover insert 150 is assembled to the cover body 122, the cover opening 122b also mates with the cover insert opening 160a. A pin 161 (not shown) may be fixedly attached to one of the cover opening 122b and the cover insert opening 160a so that the cover insert 150 can be partially separated from the cover body 122, thereby allowing up and down movement of the cover insert 150 relative to the cover body 122 and of the cover body 122 relative to the insert 150. As mentioned above, in another embodiment, the cover insert can be partially secured to the cover body 122 using one or more spring-like elements. The spring-like element can exert an additional downward force on the cover insert, thereby increasing the force against the crucible. Figure 20 is a top view of the cover body 122.

[0042] FIG. 21 is a bottom view of cover body 122, illustrating structural features that are capable of mating contact with corresponding structural features on the crucible, thereby further separating each housing from adjacent housings through contact between the cover surface and the crucible. This is similar to FIG. 8, but without cover insert 150. As with FIG. 8, FIG. 21 shows cover body 122 having cover bottom surface 126 and bottom surface portion 126a. Bottom surface portion 126a is elevated a predetermined distance from cover bottom surface 126 and functions to interact with crucible 130 as disclosed above. FIG. 22 is a side cross-sectional view of FIG. 21.

[0043] Referring now to FIG. 23, a second embodiment of the present invention is shown showing a cover 120'. The cover 120' has a cover insert 150' in a lower position relative to the cover body 122'. This position is reached when the lifting mechanism 250 lifts the cover 120' away from the crucible 130. FIG. 24 is a top view of the cover 120'. In both FIGS. 23 and 24, the connection locations 127' where the rods 254 are respectively connected to lift the cover 120' are shown. In this embodiment, the cover insert 150' is recessed inside the V-shaped opening of the cover 120' such that both ends of the cover insert 150' are not flush with the front edge of the cover 120'.

[0044] FIG. 25 is a bottom view of the cover 120' of FIG. 23. The cover 120' has a bottom surface 126' and a plurality of bottom surfaces 126a' that interact with the crucible surface portion 134a of the crucible 130. The cover insert 150' also has an insert bottom surface 154' that interacts with the crucible surface portion 134a. FIG. 26 is a side view of FIG. 23 showing the cover 120' with the cover insert 150'. FIG. 27 is a front view of the cover 120' shown in FIG. 23.

[0045] FIG. 28 is a perspective view of the cover 120' with the cover insert 150' in a lower position relative to the cover body 122'. This position is reached when the lifting mechanism 250 lifts the cover 120' away from the crucible 130, allowing rotation of the crucible 130. FIG. 29 is a side view of the cover 120' in an upper position relative to the crucible 130. As shown, neither the cover body 122 nor the cover insert 150 contact any part of the crucible 130. In this position, the crucible 130 can be rotated to position one of the crucible receiving sections 132 in alignment with the cover opening 124'. FIG. 30 is a side view of the cover 120' being lowered toward the crucible 130, with the cover insert 150' just beginning to contact the crucible surface 134 or crucible surface portion 134a as the cover is lowered by the lifting mechanism 250. The lifting mechanism continues to lower the cover 120' until the cover's bottom surface 126' or bottom portion 126a' contacts the crucible surface 134 or crucible surface portion 134a. As can be seen between Figures 30 and 31, the movement of the cover body 122' caused by the cover body 122' being lowered into contact with the crucible surface 134 causes the cover insert 150' to contact the crucible surface 134 and stop its downward movement, but the cover body 122' continues its downward movement. Figures 30 and 31 show how the cover insert 150' moves relative to the cover body 122' when the cover body 122' is fully lowered, such that the cover insert 122' partially separates from the cover body 122' and seeks its height and level.

[0046] Referring now to Figures 32-35, various views of the cover insert 150' are depicted. Figure 32 is a top perspective view of a V-shaped cover insert 150' having a tapered top surface 162' with an outer surface 164'. Figure 33 is a plan view of the cover insert 150'. Figure 34 is a bottom perspective view of the insert body 150'. The cover insert 150' has a bottom surface 168' that is recessed back from the outer surface 164' to form a shelf 166'. The bottom surface 168' extends along the V-shape the entire length of the cover insert 150'. The bottom surface 168' further has a raised bottom portion 154' that extends along a portion of the arm of the V, providing a bottom crucible contact surface 154a' that contacts the crucible surface 134 or crucible surface portion 134a when the cover 120' is fully lowered to contact the copper coil housing 113. FIG. 35 is a bottom view of the cover insert 150'.

[0047] FIG. 36 is a perspective view of cover body 122'. Cover body 122' has a top surface 121' and a cover opening 123'. Recessed from top surface 121' along cover opening 123' is cover body ledge 122a' that mates with ledge 166' of cover insert 150'. It should be noted that cover opening 122b' also mates with cover insert opening 160a' when cover insert 150' is mated to cover body 122'. A pin 161 (not shown) may be fixedly attached to one of cover opening 122b' and cover insert opening 160a' so that cover insert 150' can be partially separated from cover body 122', thereby allowing up and down movement of cover insert 150' relative to cover body 122' and, in turn, up and down movement of cover body 122' relative to insert 150'. As mentioned above, in another embodiment, the cover insert can be secured in part to the cover body 122' using one or more spring-like elements. The spring-like elements can exert additional downward force on the cover insert, thereby increasing the force against the crucible. Figure 37 is a top view of the cover body 122'.

[0048] FIG. 38 is a bottom view of the cover body 122', similar to FIG. 25, but without the cover insert 150'. As with FIG. 25, FIG. 38 shows the cover body 122' having a cover bottom surface 126' and a bottom surface portion 126a'. The bottom surface portion 126a' is elevated a predetermined distance from the cover bottom surface 126' and has the same construction as disclosed above. 38. The crucible 130 functions to interact with the crucible 130. FIG. 39 is a side cross-sectional view taken along line AA in FIG.

[0049] Specific details near the heated accommodation of one embodiment are shown in FIG. 40 . The accommodation edge 133 shown in FIG. 40 contains the heated location 135, and therefore the accommodation 132 shown in FIG. 40 is a heated accommodation. FIG. 40 illustrates a deposition source configured for coating, with the cover 120 in the “up” position, where the cover body 122 and cover insert 150 are retracted from contact with the crucible surface portion 134 a, allowing rotation of the crucible 130. FIG. 41 illustrates the cover in the “down” position, where the cover insert 150 has its bottom crucible contact surface 154 a in contact with the crucible surface portion 134 a. The contact barrier thus formed extends along the accommodation 132 a sufficient distance to provide a contact barrier between the heated and unheated accommodation portions. To reduce the need for cover maintenance by removing adhered material, the cover insert 150 is replaceable with a new cover insert 150 that can be partially detached from the cover body 122.

[0050] In the present invention, the cover-to-crucible contact configuration prevents contaminants from spreading from the heated to the unheated enclosure by eliminating line-of-sight movement of the coating vapor. Due to the low pressure, the vapor travels largely unimpeded until it strikes one of the surfaces within the system 100. Upon impact, a significant amount of the incident vapor molecules adhere to that surface, resulting in the accumulation of deposits. By implementing a partially detached cover insert 150 in the cover 120, along with the interface between the cover body 122 and the crucible surface 134, deposits can accumulate on the cover insert 150 for a period of time without creating a source of cross-contamination. Furthermore, when the raised bottom 154 is recessed from the tapered edge 163 of the cover insert 150, the clearance between the bottom surface 168 of the tapered edge 163 and the crucible 130 allows deposits to accumulate on this surface without compromising the ability of the raised bottom 154 to easily flake off or rub off and contaminate other enclosures. Additionally, some target materials, such as gold, will weld when they come into contact with surfaces that have deposits of these materials. Therefore, surfaces with deposits of materials that come into contact with the deposits may weld upon contact under conditions present in a high-vacuum chamber. This welding can result in structures that bond within the system, or even relatively large pieces of deposits may flake off when movement occurs. The present invention prevents welding by preventing contact between the surfaces of the tapered edge 163 and the bottom surface 168 and by positioning the deposit areas away from potential contact points.

[0051] Next, we will explain how the cover body 122 contacts the crucible in the first embodiment. The crucible 130 has multiple housings 132, each with a crucible surface portion 134a positioned away from the crucible 130. As best shown in FIG. 42, the insert bottom contact surface 154a is configured to have approximately the same contour as the crucible surface portion 134a. When the cover 120 is aligned with the crucible 130, as in FIG. 42, one of the housings 132 is uncovered, with the tapered edge 163 closest to the uncovered housing. As in the first embodiment, the edge of the uncovered housing coincides with the heating location 135, and therefore the uncovered housing is the heated housing. Extending away from the cover 120 toward the crucible 130 is the bottom portion 126a, which contacts the other crucible surface portion 134a.

[0052] [Operation of the present invention] When selecting among the multiple housings, relative movement between the crucible and the cover must occur without allowing contact between the crucible and the cover. As described in this invention, the cover and crucible cooperate to form a contact barrier, so the crucible must be moved in order to achieve the described effect. Those skilled in the art will appreciate that the selection movement and cover movement must be controlled. Therefore, contact between the cover inserts 150, 150' or any areas where deposits have accumulated must be minimized during receptacle selection. Numerous mechanisms and control systems can be configured to achieve this effect, and the descriptions and embodiments provided herein are illustrative and are not meant to limit the scope of the invention.

[0053] In the rotatable housing configuration of the present invention, the cover and crucible form two halves of a contact barrier that can prevent rotation of the crucible 130. Accordingly, both described embodiments of the present invention include a rotation mechanism (not shown) that rotates the crucible 130 to select among multiple housings 132, and a lifting mechanism 250 that enables contact-free rotation between the cover 120 and the crucible 130. The rotation mechanism connects the crucible 130 to the source housing 112 and is controlled by an external device (not shown) to rotate the crucible 130 about a rotation axis 235. Controlling the rotational position of the crucible 130 can bring any of the housings 132 to the heating position 135. The rotation mechanism can be an AC or DC motor or a rotary or linear pneumatic actuator and may have sensors attached to the crucible and housing to detect the rotational position. 4 shows a bottom perspective view of lifting mechanism 250, including actuator 252 and rod 254, which provide lifting motion for cover 120 (not shown). Crucible 130 and electron beam source exit 140 are also shown. In one embodiment, actuator 252 is a single-acting pneumatic actuator with a spring return housed in a bellows, which forces the cover to normally be in the upper position. In another embodiment, actuator 252 is double-acting, providing both lifting and lowering motion. Other lifting mechanisms that can be used with the present invention include, but are not limited to, lead screws, piezoelectric actuators, bimetallic elements, magnetic solenoids, and linear motors.

[0054] The motion involved in lifting the cover is best seen in the side view of Figure 5. The cover lifting components (actuator 252, rod 254, and cover 120) are depicted in solid and dotted lines to indicate extreme positions of motion. Cover 120 is connected at its corners to actuator 252 via rod 254. In its normal up position, or dotted line position, bottom surface 152 of cover insert 150 releases the closed crucible, while in its forced down position, or solid line position, cover 120 is fully engaged. Combining a rotation mechanism with a lifting mechanism is typically useful for rotating crucibles, providing a multi-receptacle approach with both covered and uncovered receptacles.

[0055] While preferred embodiments of the present invention have been described herein, the above description is by way of example only. Further variations of the invention disclosed herein will occur to those skilled in the art, and all such variations are considered to be within the scope of the present invention as defined by the appended claims.

Claims

1. A crucible cover, a body member configured to contact a crucible having a multi-pocket vapor source with a plurality of accommodation portions, the body member configured with an opening formed therein; an insert member at least partially disposed within the opening and movably contacting the body member within the opening; the crucible cover is configured such that, during operation of the crucible cover over the multi-pocket vapor source, the insert member is displaceable relative to the body member such that at least a portion of the insert member remains in physical contact with the crucible but is removed from physical contact with the body member; an outer edge of the insert member having a stepped shape to form a first shelf feature at that location; a crucible cover, wherein an edge of the opening of the body member also has a stepped shape to form a second shelf-like feature at that location, the second shelf-like feature being configured to removably contact the first shelf-like feature at that location.

2. 2. The crucible cover of claim 1, The crucible cover is configured such that, during operation of the crucible cover over the multi-pocket vapor source, after the insert member initially comes into physical contact with the crucible, the body member can move further downward toward the crucible, resulting in displacement of the insert member relative to the body member.

3. The crucible cover according to claim 1 or claim 2, At least a portion of the insert member extends beyond a periphery of the body member.

4. The crucible cover according to claim 1 or claim 2, The crucible cover, wherein the insert member does not extend beyond a periphery of the body member.

5. The crucible cover according to any one of claims 1 to 4, The insert is configured to separate at least one receptacle from at least one other receptacle of the plurality of receptacles.

6. The crucible cover according to any one of claims 1 to 5, The insert is generally U-shaped or V-shaped.

7. The crucible cover according to any one of claims 1 to 6, A crucible cover, wherein the bottom surface of the insert member extends below the bottom surface of the body member.

8. The crucible cover according to any one of claims 1 to 7, The insert tapers in thickness from an outer edge of the insert to an inner edge of the insert.

9. 9. The crucible cover of claim 8, The insert has an outer edge that is thicker than the inner edge.

10. The crucible cover according to any one of claims 1 to 9, The insert member is vertically displaceable relative to a bottom surface of the body member.

11. The crucible cover according to any one of claims 1 to 10, The insert member is displaceable from a first position, in which the upper surface of the insert member is located below the upper surface of the body member, to a second position, in which the upper surface of the insert member is located above the upper surface of the body member, during operation of the crucible cover to cover the multi-pocket vapor source.

12. The crucible cover according to any one of claims 1 to 11, The crucible cover is configured such that before the body member contacts the crucible, the top surface of the insert member and the top surface of the body member are substantially coplanar, and after the body member contacts the crucible, the top surface of the insert member and the top surface of the body member are not coplanar.

13. A crucible cover according to any one of claims 1 to 12, a bottom surface of the body member configured to separate the plurality of receptacles from one another, including separating an uncovered receptacle from at least one covered receptacle upon contact between the insert member and the crucible;

14. A crucible cover according to any one of claims 1 to 13, The opening is formed as a concave recess extending inwardly from a periphery of the body member.

15. A crucible cover according to any one of claims 1 to 14, The opening is generally U-shaped or V-shaped.

16. 16. The crucible cover according to claim 1, The opening includes an edge feature extending along at least a portion of a periphery of the opening.

17. 17. The crucible cover according to claim 1, The opening is configured to leave one of the plurality of housing portions uncovered by the crucible cover when the crucible cover is aligned with the crucible.

18. 18. The crucible cover according to any one of claims 1 to 17, the body member includes a ledge at least partially defining the opening, and the at least a portion of the insert member removed from physical contact with the body member is removed from physical contact with the ledge of the body member.

19. The crucible cover according to claim 1; the crucible comprising the multi-pocket vapor source comprising the plurality of accommodation portions.

20. 20. The system of claim 19, The system includes a crucible cover, a crucible cover, a crucible cover, a crucible cover, a crucible cover, a crucible cover, a crucible cover, and a crucible cover, wherein the plurality of receptacles are covered or uncovered by aligning a predetermined receptacle among the plurality of receptacles with the opening in the body member.

21. 21. A system according to claim 19 or claim 20, comprising: The system further comprises a housing configured to accommodate at least a portion of the crucible.

22. 22. A system according to any one of claims 19 to 21, comprising: The system further includes a rotation mechanism configured to rotate the crucible to bring a predetermined one of the plurality of receptacles into position with the opening of the body member.

23. 23. A system according to any one of claims 19 to 22, comprising: The system further comprises a lifting mechanism configured to raise and / or lower the crucible cover relative to the crucible.

Citation Information

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