The present invention is generally directed to wafer processing equipment and more particularly, to a collection chamber apparatus that provides a means to separate and collect multiple different fluids for reuse during wafer processing.
This invention relates particularly to silicon wafer processing where multiple fluids are used during a process to clean, etch or do other wet process operations. The fluids are often expensive and it is desirable to reuse them to exhaustion.
Normal wafer processing employs one collection chamber to separate a special fluid from the waste drain and enable recirculation of the fluid.
The object of this invention is to have multiple, independent collection chambers, with the ability to separate multiple different fluids for recirculation and reuse.
According to the present invention, a collection chamber apparatus (fluid collecting device) is composed of multiple (n+1) round collection trays which stack and seal into each other when not in use and form multiple (n) unique collection chambers and drain systems, as required. The specific example shown has four (4) collection trays for three (3) unique collection chambers.
The collection trays move into the designated position by way of an opposing pair of vertical air cylinders.
The tops of the air cylinders have a stepped shoulder designed to separate and vertically position two trays at one time.
The two trays form a collection chamber centered on the wafer's edge. The other trays stack into each other in all positions to prevent fluid cross contamination.
As the motor spins the wafer, centrifugal force propels the fluid outward. The fluid leaves the wafers outside edge, striking the angled wall of the upper tray, which deflects the fluid into the lower tray. The lower tray has a drain spout which directs the fluid into a manifold separator. The manifold separator directs each fluid into a discrete tank (not shown) for further reuse.
For the rinse process, the trays are closed to eliminate the possibility of water being incorporated into the fluid streams.
A first fluid separating position will follow as an example of the typical description of operation, for each of the three fluids. Referring to
Next, referring back to
The distance between the two collection trays that define one specific, selected collection chamber remains the same regardless of which two collection trays 130, 140, 150, 160 define such collection chamber. This is a result of the construction of the pistons (e.g., the shoulders formed therein) and controlled distance of the strokes thereof.
As shown in the
Additional details and advantages of the present invention include but are not limited to: (1) the collection apparatus is able to collect multiple different fluids without cross contamination of each other, and directing each fluid into a separate drain; (2) it contains multiple collection trays which are determined by the number of fluids plus one; (3) the collection trays have the ability to stack into each other, preventing other fluids from splashing into them, thus eliminating cross contamination; (4) air cylinders with shoulders designed to vertically position and set the gap between two trays, thereby forming each collection chamber; (5) multiple drip grooves are designed into the underside of each tray, to direct fluid into the intended lower tray's drain; (6) when the collection trays are stacked together a gap is left between the upper and lower tray such that space is left for fluid that has yet to drain out of the tray, thereby preventing splashing of the fluid and (7) each fluid is discharged into a unique drain.
Referring again to
The collection chamber apparatus 100 includes a wafer support member 110 on which a wafer 115 is disposed during processing thereof. The wafer support member 110 is in the form of a rotatable wafer spin chuck. The spin chuck 110 is operatively connected to a motor 112 which is configured to rotate the spin chuck 110 at a selected speed (RPM). Operation of the spin chuck 110 is by traditional methods.
A fluid dispensing arm 120 represents a means for dispensing a fluid 119 onto the wafer 115. The fluid dispensing arm 120 can be any number of different types of traditional fluid dispensing members including the arm 120 shown in the figures. As described herein, during wafer processing, liquid is dispensed onto a surface of the wafer 115 and during rotation of the wafer 115, the fluid is propelled radially outward and off of the wafer 115 by centrifugal force.
In accordance with the present invention, the collection chamber assembly of the apparatus 100 is disposed circumferentially about the spin chuck 110 and thus, is disposed circumferentially about the wafer 115. As mentioned above, the collection chamber component comprises a plurality of collection trays that serve to not only collect the fluid being propelled radially outward off of the wafer 115 during the processing thereof but also routes the fluid to an outlet to facilitate collection of the fluid. In the illustrated embodiment, which is exemplary in nature, there are four different collection trays 130, 140, 150, 160 that are arranged in a stacked configuration. However, it will be understood that less than or more than four collection trays can be used in the apparatus 100. It will be appreciated that the addition of one collection tray results in a corresponding addition of a distinct collection chamber for collecting a fluid. This aspect will be readily understood from the below discussion and from the drawing figures.
The collection trays 130, 140, 150, 160 can have the same or similar basic design as shown in the figures. In the illustrated embodiment, the collection tray 130 is generally annular shaped with a center opening 131 that receives the spin chuck 110 and the wafer 115. The collection tray 130 has a main section that defines an annular shaped collection track 132 which is defined by a floor and a pair of beveled side walls that are adjacent and slope up from the floor. Alternative floor design is equally possible and the illustrated design is only exemplary in nature.
As shown in
The collection tray 130 also includes an outlet port 136 which is in fluid communication with the fluid collection track 132. The outlet port 136 can be in the form of a spout that extends radially outward from the main section between the flange sections 133. In the illustrated embodiment, the outlet port 136 is generally V-shaped and extends outward from the main section and thus provides a trough along which the collected fluid flows. The bottom of the outlet port 136 is in fluid communication with the bottom (floor) of the fluid collection track 132 and thus fluid can flow from the fluid collection track 132 into the outlet port 136. As will be described below, the outlet port of each collection tray is in fluid communication with the manifold structure 200 to route the collected fluid.
The collection tray 140 is similar to the collection tray 130 and is generally annular shaped with a center opening 141 that receives the spin chuck 110 and the wafer 115. The collection tray 140 has a main section that defines an annular shaped collection track 142 which is defined by a floor and a pair of beveled side walls that are adjacent and slope up from the floor.
The collection tray 140 also has a pair of outwardly extending flange sections 143. The flange sections 143 are preferably located opposite one another (e.g., 180 degrees apart) and have a plurality of openings 144 formed therein. The openings 144 are spaced along the flange section between the side walls thereof. In the illustrated embodiment, there are three openings 144 that receive working pistons (e.g., ends of pneumatic (air) cylinders) as described below. There is also an additional opening 145 formed in each flange section 143. The openings 144, 145 can be arranged such that the two openings 144 are adjacent one another and the third opening 144 is spaced from this pair of openings 144 with the opening 145 being disposed between the pair of openings 144 and the spaced third opening 144.
The collection tray 140 also includes an outlet port 146 which is in fluid communication with the fluid collection track 142. The outlet port 146 can be in the form of a spout that extends radially outward from the main section between the flange sections 143. In the illustrated embodiment, the outlet port 146 is generally V-shaped and extends outward from the main section and thus provides a trough along which the collected fluid flows. The bottom of the outlet port 146 is in fluid communication with the bottom (floor) of the fluid collection track 142 and thus fluid can flow from the fluid collection track 142 into the outlet port 146.
The collection tray 150 is similar to the other collection trays and is generally annular shaped with a center opening 151 that receives the spin chuck 110 and the wafer 115. The collection tray 150 has a main section that defines an annular shaped collection track 152 which is defined by a floor and a pair of beveled side walls that are adjacent and slope up from the floor.
The collection tray 150 also has a pair of outwardly extending flange sections 153. The flange sections 153 are preferably located opposite one another (e.g., 180 degrees apart) and have a plurality of openings 154 formed therein. The openings 154 are spaced along the flange section between the side walls thereof. In the illustrated embodiment, there are three openings 154 that receive working pistons (e.g., ends of pneumatic (air) cylinders) as described below. There is also an additional opening 155 formed in each flange section 153. The openings 154, 155 can be arranged such that the two openings 154 are adjacent one another and the third opening 154 is spaced from this pair of openings 154 with the opening 155 being disposed between the pair of openings 154 and the spaced third opening 154.
The collection tray 150 also includes an outlet port 156 which is in fluid communication with the fluid collection track 152. The outlet port 156 can be in the form of a spout that extends radially outward from the main section between the flange sections 153. In the illustrated embodiment, the outlet port 156 is generally V-shaped and extends outward from the main section and thus provides a trough along which the collected fluid flows. The bottom of the outlet port 156 is in fluid communication with the bottom (floor) of the fluid collection track 152 and thus fluid can flow from the fluid collection track 152 into the outlet port 156.
The collection tray 160 is generally annular shaped with a center opening 161 that receives the spin chuck 110 and the wafer 115. The collection tray 160 has a main section that defines an annular shaped collection track 162 which is defined by a floor and a pair of beveled side walls that are adjacent and slope up from the floor.
The collection tray 160 also has a pair of outwardly extending flange sections 163. The flange sections 163 are preferably located opposite one another (e.g., 180 degrees apart) and have a plurality of openings 164 formed therein. The openings 164 are spaced along the flange section between the side walls thereof. In the illustrated embodiment, there are three openings 164 that receive working pistons (e.g., ends of pneumatic (air) cylinders) as described below. There is also an additional opening 165 formed in each flange section 163. The openings 164, 165 can be arranged such that the two openings 164 are adjacent one another and the third opening 164 is spaced from this pair of openings 164 with the opening 165 being disposed between the pair of openings 164 and the spaced third opening 164.
The collection tray 160 also includes an outlet port 166 which is in fluid communication with the fluid collection track 162. The outlet port 166 can be in the form of a spout that extends radially outward from the main section between the flange sections 163. In the illustrated embodiment, the outlet port 166 is generally V-shaped and extends outward from the main section and thus provides a trough along which the collected fluid flows. The bottom of the outlet port 166 is in fluid communication with the bottom (floor) of the fluid collection track 162 and thus fluid can flow from the fluid collection track 162 into the outlet port 166.
As mentioned above, the collection trays 130, 140, 150, 160 are arranged in a stacked configuration and thus the respective flange sections are stacked on top of each other and are configured to mate with one another and the respective outlet ports are disposed on top of one another as shown.
The outlet ports 136, 146, 156, 166 thus resemble angled troughs/spouts which permit fluid to flow downward by gravity. As best shown in
The collection aspect of the apparatus 100 is based on the fact that the individual collection trays 130, 140, 150, 160 can each be moved to a predetermined position so as to define a discrete collection chamber that is configured to collect the fluid that is propelled outwardly off of the wafer during processing. It will be appreciated that different means for moving the collection trays can be used and the ones described herein are merely exemplary in nature. In the illustrated embodiment, pneumatic devices are used to control the movement of the trays and in particular, pistons in the form of air cylinders are used. To move the multiple (e.g., 4) collection trays, there are multiple pistons and in particular and according to one embodiment, when the apparatus includes n number of collection trays, there are 2*(n−1) number of pistons. Further, it will be appreciated that each tray can be moved by one or more piston and thus, while the illustrated embodiment shows pistons being arranged in pairs, other variations are equally possible. For example, sets of three pistons can be used instead to move the collection trays. To provide the proper support, it is desired that there be at least two pistons for moving a respective collection tray (e.g., as mentioned, there can be three or more pistons used per collection tray).
As shown, there is a pair of first pistons 300, a pair of second pistons 310, and a pair of third pistons 320. The pistons 300, 310, 320 are arranged below the flange sections of the collection trays and are axially aligned with select ones of the openings 134, 144, 154, 164. The openings 134, 144, 154, 164 are axially aligned with one another and differ in only dimensions (i.e., diameters thereof), thereby allow at least a portion of the piston to pass through select openings. Each piston 300, 310, 320 includes a stepped construction so as to create select interference with the tray so as to effectuate a lifting of a select tray.
For the purpose of illustration and as described below, the pair of first pistons 300 is designed to lift the collection trays 130, 140; the pair of second pistons 310 is designed to lift the collection trays 140, 150 and the pair of third piston 320 is designed to lift the collection trays 150, 160. In other words, each pair of pistons is designed to lift two collection trays; however, in combination with other pairs of pistons being actuated, more than two collection trays are moved.
As shown best in
As shown in
While the invention has been described in connection with certain embodiments thereof, the invention is capable of being practiced in other forms and using other materials and structures. Accordingly, the invention is defined by the recitations in the claims appended hereto and equivalents thereof.
The present invention claims the benefit of U.S. patent application Ser. No. 61/864,895, filed Aug. 12, 2013, which is hereby incorporated by reference in its entirety.
Number | Name | Date | Kind |
---|---|---|---|
5997653 | Yamasaka | Dec 1999 | A |
6589338 | Nakamori | Jul 2003 | B1 |
6793769 | Kajino et al. | Sep 2004 | B2 |
6810888 | Tsuchiya et al. | Nov 2004 | B2 |
7122084 | Hohenwarter | Oct 2006 | B2 |
7467635 | Satoshi et al. | Dec 2008 | B2 |
7584760 | Miya | Sep 2009 | B2 |
7681581 | Rose | Mar 2010 | B2 |
7722736 | Miya | May 2010 | B2 |
7958898 | Yoshida | Jun 2011 | B2 |
8109282 | Miya et al. | Feb 2012 | B2 |
8485204 | Obweger | Jul 2013 | B2 |
8501025 | Hashizume et al. | Aug 2013 | B2 |
8544483 | Collins et al. | Oct 2013 | B2 |
8656936 | Collins et al. | Feb 2014 | B2 |
8684015 | Lauerhaas et al. | Apr 2014 | B2 |
8721834 | Koo et al. | May 2014 | B2 |
8845815 | Ogata | Sep 2014 | B2 |
8899246 | Plazonic | Dec 2014 | B2 |
8926788 | Hohenwarter | Jan 2015 | B2 |
8955529 | Hohenwarter | Feb 2015 | B2 |
9431276 | Miya et al. | Aug 2016 | B2 |
20030170988 | Izumi et al. | Sep 2003 | A1 |
20040040177 | Izumi et al. | Mar 2004 | A1 |
20040050491 | Miya et al. | Mar 2004 | A1 |
20040226655 | Kajino et al. | Nov 2004 | A1 |
20050274400 | Chan | Dec 2005 | A1 |
20070212884 | Yamamoto | Sep 2007 | A1 |
20080053493 | Kimura | Mar 2008 | A1 |
20080078428 | Yoshida | Apr 2008 | A1 |
20080142051 | Hashizume | Jun 2008 | A1 |
20090090391 | Edamoto | Apr 2009 | A1 |
20120067847 | Sakurai | Mar 2012 | A1 |
20120186275 | Kato et al. | Jul 2012 | A1 |
20130256273 | Miura et al. | Oct 2013 | A1 |
20130291905 | Hashizume et al. | Nov 2013 | A1 |
20130327365 | Sato | Dec 2013 | A1 |
20140174483 | Miya et al. | Jun 2014 | A1 |
20140202989 | Kishimoto et al. | Jul 2014 | A1 |
20140261162 | Yamaguchi | Sep 2014 | A1 |
20140331927 | Nakano et al. | Nov 2014 | A1 |
20150075571 | Miura | Mar 2015 | A1 |
20150090301 | Higuchi et al. | Apr 2015 | A1 |
20150114561 | Higashijima et al. | Apr 2015 | A1 |
20150200087 | Kobayashi | Jul 2015 | A1 |
20150243543 | Schwarzenbacher et al. | Aug 2015 | A1 |
20150262848 | Sano et al. | Sep 2015 | A1 |
20150340251 | Wakita et al. | Nov 2015 | A1 |
20160016206 | Osada et al. | Jan 2016 | A1 |
20160045938 | Aomatsu et al. | Feb 2016 | A1 |
20160059274 | Miya et al. | Mar 2016 | A1 |
Number | Date | Country |
---|---|---|
59-23517 | Feb 1984 | JP |
4-34902 | Aug 1992 | JP |
11-87294 | Mar 1999 | JP |
3555724 | Aug 2004 | JP |
2004-265910 | Sep 2004 | JP |
5155035 | Feb 2013 | JP |
5421610 | Feb 2014 | JP |
Number | Date | Country | |
---|---|---|---|
20150040952 A1 | Feb 2015 | US |
Number | Date | Country | |
---|---|---|---|
61864895 | Aug 2013 | US |