3D PRINTED PLASMA ARRESTOR FOR AN ELECTROSTATIC CHUCK
20170243726 · 2017-08-24
Inventors
Cpc classification
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B29L2031/7502
PERFORMING OPERATIONS; TRANSPORTING
B28B1/001
PERFORMING OPERATIONS; TRANSPORTING
International classification
B28B1/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for manufacturing an arrestor for an electrostatic chuck includes printing first layers of an arrestor for an electrostatic chuck using a 3-D printer and an electrically non-conductive material. The first layers of the arrestor at least partially define a first opening to a gas flow channel. The method includes printing intermediate layers of the arrestor using the 3-D printer and the electrically non-conductive material. The intermediate layers of the arrestor at least partially define the gas flow channel. The method includes printing second layers of the arrestor using the 3-D printer and the electrically non-conductive material. The second layers of the arrestor at least partially define a second opening of the gas flow channel. At least one of the first opening, the second opening and/or the gas flow channel of the arrestor is arranged to prevent a direct line of sight between the first opening and the second opening of the arrestor.
Claims
1. A method for manufacturing an arrestor for an electrostatic chuck, comprising: using a 3-D printer: printing first layers of an arrestor for an electrostatic chuck using an electrically non-conductive material, wherein the first layers of the arrestor at least partially define a first opening to a gas flow channel; printing intermediate layers of the arrestor using the electrically non-conductive material, wherein the intermediate layers of the arrestor at least partially define the gas flow channel; and printing second layers of the arrestor using the electrically non-conductive material, wherein the second layers of the arrestor at least partially define a second opening of the gas flow channel, and wherein at least one of the first opening, the second opening and/or the gas flow channel of the arrestor is arranged to prevent a direct line of sight between the first opening and the second opening of the arrestor.
2. The method of claim 1, wherein the arrestor is made of ceramic.
3. The method of claim 1, wherein the arrestor is made of glass.
4. The method of claim 1, wherein the arrestor is made of plastic.
5. The method of claim 1, wherein the arrestor has a cylindrical outer shape.
6. The method of claim 1, wherein the direct line of sight is a straight line defined between the first opening and the second opening and wherein the gas flow channel deviates relative to the direct line of sight.
7. The method of claim 1, wherein one of the first opening and the second opening is arranged at a center of a first surface of the arrestor and the other of the first opening and the second opening is arranged on a second surface of the arrestor at an offset location relative to a center of the second surface of the arrestor.
8. The method of claim 1, wherein the first opening comprises a gas inlet of the arrestor and the second opening comprises a gas outlet of the arrestor.
9. The method of claim 1, wherein the first opening comprises a gas outlet of the arrestor and the second opening comprises a gas inlet of the arrestor.
10. An arrestor for an electrostatic chuck, comprising: an arrestor body made of an electrically non-conductive, 3-D printed material; a gas inlet arranged on one surface of the arrestor; a gas outlet arranged on another surface of the arrestor; and a gas flow channel fluidly connecting the gas inlet to the gas outlet, wherein at least one of the gas flow channel, the gas inlet and/or the gas outlet is arranged to prevent a direct line of sight between the gas inlet and the gas outlet of the arrestor.
11. The arrestor of claim 10, wherein the electrically non-conductive, 3-D printed material includes ceramic.
12. The arrestor of claim 10, wherein the electrically non-conductive, 3-D printed material includes glass.
13. The arrestor of claim 10, wherein the electrically non-conductive, 3-D printed material includes plastic.
14. The arrestor of claim 10, wherein the arrestor has a cylindrical outer shape.
15. The arrestor of claim 10, wherein the direct line of sight is defined between the gas inlet and the gas outlet and wherein the gas flow channel deviates laterally relative to the direct line of sight.
16. The arrestor of claim 10, wherein one of the gas inlet and the gas outlet is arranged at a center of a first surface of the arrestor and the other of the gas inlet and the gas outlet is arranged on a second surface of the arrestor at an offset location relative to a center of the second surface of the arrestor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022] In the drawings, reference numbers may be reused to identify similar and/or identical elements.
DETAILED DESCRIPTION
[0023] The present disclosure relates to systems and methods for making an arrestor for a baseplate of an ESC (or other substrate support) or for other applications flowing gas while preventing a direct line of sight from a gas inlet to a gas outlet. In some examples, the arrestor is made from an electrically non-conductive material such as ceramic, glass, plastic, etc. that can be printed using a 3D printer to form a solid or semi-solid structure. A gas flow channel including a gas inlet and a gas outlet is defined in an inner portion of the arrestor to flow backside gas through the arrestor. The gas flow channel defines a gas flow path that does not have a direct line of sight from the gas inlet to the gas outlet.
[0024] Referring now to
[0025] Referring now to
[0026] As can be seen in
[0027] Referring now to
[0028] Referring now to
[0029] Referring now to
[0030] While the preceding examples of arrestors define gas flow paths that are generally located in a single plane, the gas flow paths can be arranged in more than one plane. Referring now to
[0031] Referring now to
[0032] When using ceramic rather than plastic, additional steps may be performed. After 3-D printing is complete, thermal de-binding and thermal sintering may be performed. Thermal de-binding includes thermal decomposition of binder in the 3-D printed ceramic material. This can be performed by heating the arrestor to a predetermined temperature range. Pressure and gas flows may also be controlled during de-binding. After thermal de-binding is complete, sintering of the arrestor can be performed. Alternately, thermal de-binding and sintering can be done together.
[0033] The foregoing description is merely illustrative in nature and is in no way intended to limit the disclosure, its application, or uses. The broad teachings of the disclosure can be implemented in a variety of forms. Therefore, while this disclosure includes particular examples, the true scope of the disclosure should not be so limited since other modifications will become apparent upon a study of the drawings, the specification, and the following claims. It should be understood that one or more steps within a method may be executed in different order (or concurrently) without altering the principles of the present disclosure. Further, although each of the embodiments is described above as having certain features, any one or more of those features described with respect to any embodiment of the disclosure can be implemented in and/or combined with features of any of the other embodiments, even if that combination is not explicitly described. In other words, the described embodiments are not mutually exclusive, and permutations of one or more embodiments with one another remain within the scope of this disclosure.
[0034] Spatial and functional relationships between elements (for example, between modules, circuit elements, semiconductor layers, etc.) are described using various terms, including “connected,” “engaged,” “coupled,” “adjacent,” “next to,” “on top of,” “above,” “below,” and “disposed.” Unless explicitly described as being “direct,” when a relationship between first and second elements is described in the above disclosure, that relationship can be a direct relationship where no other intervening elements are present between the first and second elements, but can also be an indirect relationship where one or more intervening elements are present (either spatially or functionally) between the first and second elements. As used herein, the phrase at least one of A, B, and C should be construed to mean a logical (A OR B OR C), using a non-exclusive logical OR, and should not be construed to mean “at least one of A, at least one of B, and at least one of C.”