DEVICE FOR ELECTROLESS METALLIZATION OF A TARGET SURFACE OF AT LEAST ONE WORKPIECE
20200291526 · 2020-09-17
Inventors
Cpc classification
C23C18/163
CHEMISTRY; METALLURGY
International classification
C23C18/16
CHEMISTRY; METALLURGY
Abstract
An assembly for electroless metallization of a target surface (11) of at least one workpiece (10), comprisinga container (13) for receiving an electrolyte solutionan inlet for the electrolyte solution, said inlet arranged in the base (15) of the container (13), wherein the inlet (20) is designed as an inlet port (21) with a diffuser plate (24) comprising inlet openings (25) arranged in concentric circlesan outlet (30) which is arranged on an upper side of the container (13)a receiving area for holding the at least one workpiece (10), wherein the diffuser plate (24) is formed as a first assembly (31) and a second assembly (32), which is identical to the first assembly, of a respective plurality of inlet openings (25), wherein the assemblies at least partially but not completely overlap, and the inlet (20) has at least two inlet ports (21, 22).
Claims
1. An assembly for electroless metallization of a target surface (11) of at least one workpiece (10), comprising a container (13) for receiving an electrolyte solution an inlet for the electrolyte solution, said inlet arranged in the base (15) of the container (13), wherein a diffuser plate (24) with a plurality of inlet openings (25) is arranged on the inside of the container before the inlet (20), an outlet (30) which is arranged on an upper side of the container (13) a receiving area for holding the at least one workpiece (10), characterized in that the diffuser plate (24) is formed from a respective plurality of inlet openings (25) as a first assembly (31) and a second assembly (32), which is identical to the first assembly, wherein the assemblies at least partially but not completely overlap, and the inlet (20) has at least two inlet ports (22, 23).
2. The assembly according to claim 1, characterized in that the first assembly (31) and the second assembly (32) are arranged along a longitudinal axis (L) of the container (13).
3. The assembly according to claim 2, characterized in that the diffuser plate (24) is arranged centered on the base of the container (13).
4. The assembly according to claim 3, characterized in that the inlet (20) has at least three inlet ports (21, 22, 23).
5. The assembly according to claim 4, characterized in that a first inlet port (21) is aligned centered relative to the diffuser plate (24), and a second inlet port (22) and a third inlet port (23) are aligned relative to the first assembly (31) and the second assembly (32), respectively.
6. The assembly according to claim 5, characterized in that the diffuser plate (24) has a baffle plate (27) and/or a lower density of inlet openings (25) in the area of at least one of the inlet ports (21, 22, 23).
7. The assembly according to claim 1, characterized in that all inlet openings (25) have an identical diameter (d).
8. The assembly according to claim 1, characterized in that the inlet openings (25) are arranged evenly distributed.
9. The assembly according to claim 1, characterized in that a surface of the diffuser plate (24) amounts to at least 95% of a base surface (A.sub.B) of the container (13).
10. The assembly according to claim 1, characterized in that the inlet ports (91) have an identical cross-sectional surface (A.sub.Z).
11. The assembly according to claim 1, characterized in that the second inlet port (22) and the third inlet port (23) have a cross-sectional surface (A.sub.Z) of 45% of a cross-section of the first inlet port (21).
12. The assembly according to claim 1, characterized in that the first assembly and the second assembly are formed in a circular shape and the inlet openings (25) are each arranged in concentric circles.
13. The assembly according to claim 1, characterized in that at least one pump is assigned to each inlet.
14. The assembly according to claim 1, characterized in that the distribution of the inlet openings (25) integrated into the diffuser plate (24) is circular starting from the center of the inlet opening of the processing basin.
15. The assembly according to claim 1, characterized in that the diameter of the inlet openings increases as the radius r increases and preferably amounts to at least 0.15 cm.
16. The assembly according to claim 1, characterized in that the diffuser plate 24 has at least 248 inlet openings 25 and that they constitute preferably 3% of the total surface area of the diffuser plate 24.
Description
[0024] The present invention is extensively explained in the following by means of an exemplary embodiment with reference to the enclosed figures. The following is shown:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033] To this end, the diffuser plate 24 is arranged in a lower fourth of the container 13 such that the diffuser plate is arranged between the workpieces 10 and an inlet 20, which is formed by the inlet ports 21, 22, 23, and thus a distribution of the medium supplied via the inlet 20 is ensured. Because the electrolyte solution, which is used for the metallization of the workpieces 10 in this case, is continuously recirculated during implementation of the metallization process, i.e. the electrolyte solution, which flows out of the container 13 via an upper edge of the container 13, which forms an outlet 30 in this case, is captured and then is supplied back to the container 13 via the inlet 20 arranged on the base, the diffuser plate 24 ensures a distribution of concentration that is as homogenous as possible of the reactants contained in the electrolyte solution to the extent that homogenous metal deposition takes place.
[0034]
[0035] It can be seen that the container 13, which is designed as a quartz glass container in this exemplary embodiment, is substantially in the shape of a cube and is surrounded by an overflow container 14 for capturing the medium flowing over the upper edge, which is formed as an outlet 30. The overflow container 14 has different connection ports, which are formed for guiding the electrolyte solution or as connections for cleaning the assembly. Furthermore, various attachment parts can be seen on the overflow container 14, which are designed, for example, for holding or implementing various retainers for the workpieces 10.
[0036] Finally,
[0037] In the present exemplary embodiment, the diffuser plate 24 is substantially shaped as a rectangle, wherein, in the view shown in
[0038] In addition,
[0039]
[0040] The view of the diffuser plate 24 shown in
[0041]
[0042]
LIST OF REFERENCE NUMERALS
[0043] 10 Workpiece/wafer [0044] 11 Target surfaces [0045] 13 Container [0046] 14 Overflow container [0047] 15 Base [0048] 20 Inlet [0049] 21 First inlet port [0050] 22 Second inlet port [0051] 23 Third inlet port [0052] 24 Diffuser [0053] 25 Inlet openings [0054] 27 Baffle plates [0055] 30 Outlet [0056] 31 First assembly [0057] 32 Second assembly [0058] 90 Inlet [0059] 91 Inlet port [0060] L Longitudinal axis [0061] d Diameter [0062] A.sub.D Surface [0063] A.sub.B Base surface [0064] A.sub.Z Cross-sectional surface