PLASMA RESISTANT CERAMIC BODY FORMED FROM MULTIPLE PIECES
Disclosed is a joined ceramic body comprising a first ceramic portion comprising a first ceramic, a second ceramic portion comprising a second ceramic, and a joining layer formed between the first ceramic portion and the second ceramic portion. The joining layer has a bond thickness of from 0.5 to 20 um and comprises silicon dioxide having a total impurity content of 20 ppm and less. A method of making the joined ceramic body and a joining material are also disclosed.
1 . A joined ceramic body, comprising:
a. a first ceramic portion comprising a first ceramic;
b. a second ceramic portion comprising a second ceramic;
c. a joining layer formed between the first ceramic portion and the second ceramic portion, wherein the joining layer has a bond thickness of from 0.5 to 20 um and comprises silicon dioxide having a total impurity content of 20 ppm and less relative to a mass of the joining layer.
2 . The joined ceramic body of claim 1 wherein the joining layer comprises an amorphous glassy phase having a total impurity content of 10 ppm and less relative to a mass of the joining layer.
3 . The joined ceramic body of claim 1 wherein the joining layer comprises a glass ceramic comprising an amorphous glassy phase and at least one crystalline ceramic phase.
4 . The joined ceramic body of claim 1 wherein the joining layer comprises at least one crystalline ceramic phase having crystallinity in an amount of from 5% to 99% by volume of the joining layer.
5 . The joined ceramic body of claim 1 wherein the joining layer comprises at least one crystalline ceramic phase having crystallinity in an amount of from 5% to 90% by volume of the joining layer.
6 . The joined ceramic body of claim 1 wherein the joining layer comprises at least one crystalline ceramic phase having crystallinity in an amount of from 5% to 70% by volume of the joining layer.
7 . The joined ceramic body of claim 1 wherein the joining layer comprises at least one crystalline ceramic phase having crystallinity in an amount of from 10% to 60% by volume of the joining layer.
8 . The joined ceramic body of claim 1 wherein the joining layer comprises at least one crystalline ceramic phase having crystallinity in an amount of from 10% to 50% by volume of the joining layer.
9 . The joined ceramic body of claim 1 wherein the at least one crystalline ceramic phase comprises at least one selected from the group consisting of mullite, alumina, Y2Si2O7, Y2SiO5 and Y3Al5O12 (yttrium aluminum garnet).
10 . The joined ceramic body of claim 1 wherein the Y3Al5O12 (yttrium aluminum garnet) is polycrystalline.
11 . The joined ceramic body of claim 1 wherein the joining layer has a total impurity content of 10 ppm and less relative to a mass of the joining layer.
12 . The joined ceramic body of claim 1 wherein the joining layer has a total impurity content of 5 ppm and less relative to a mass of the joining layer.
13 . The joined ceramic body of claim 1 wherein the joining layer has a total purity of 99.99% and higher relative to 100% purity.
14 . The joined ceramic body of claim 1 wherein the joining layer has a total purity of 99.995% and higher relative to 100% purity.
15 . The joined ceramic body of claim 1 wherein the joining layer has a total purity of 99.999% and higher relative to 100% purity.
16 . The joined ceramic body of claim 1 wherein the joining layer has a total alkali or alkali earth element content of 5 ppm and less relative to a mass of the joining layer.
17 . The joined ceramic body of claim 1 wherein the joining layer has a bond thickness of from 1 to 15 um.
18 . The joined ceramic body of claim 1 wherein the joining layer has a bond thickness of from 3 to 10 um.
19 . The joined ceramic body of claim 1 wherein the joining layer has a bond thickness of from 4 to 8 um.
20 . The joined ceramic body of claim 1 wherein the joining layer further comprises a rare earth oxide selected from the group consisting of Y2O3, La2O3, CeO2, Nd2O3, Pm2O3, Sm2O3, Eu2O3, Gd2O3, Tb4O7, Dy2O3, Ho2O3, Er2O3, Tm2O3, Yb2O3, Lu2O3 and combinations thereof having a purity of 99.99% and higher relative to 100% purity of the joining layer.
21 . The joined ceramic body of claim 1 wherein the joining layer further comprises an element selected from the group consisting of Y, La, Ce, Pr, Nd, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb and Lu and combinations thereof.
22 . The joined ceramic body of claim 1 wherein the first and second ceramic portions comprises the same ceramic.
23 . The joined ceramic body of claim 1 wherein the first and second ceramic comprises different ceramics.
24 . The joined ceramic body of claim 1 wherein each of the first and second ceramic portions are selected from the group consisting of aluminum oxide, yttrium oxide, aluminum nitride, yttrium aluminum garnet (YAG; Y 3 Al 5 O 12 ), silicon carbide, quartz, mullite, SiAlON materials, and combinations thereof.
25 . The joined ceramic body of claim 1 wherein the first and second ceramic portions are aluminum oxide.
26 . The joined ceramic body of claim 1 wherein the joining layer has a coefficient of thermal expansion (CTE) of from 0 to 10% of each of the first and second ceramic portions.
27 . The joined ceramic body of claim 1 wherein the joining layer has a coefficient of thermal expansion (CTE) of from 0 to 5% of each of the first and second ceramic portions.
28 . The joined ceramic body of claim 1 wherein the first and second ceramic portions have a purity of 99.99% and higher relative to 100% purity.
29 . The joined ceramic body of claim 1 wherein the first and second ceramic portions have a purity of 99.995% and higher relative to 100% purity.
30 . The joined ceramic body of claim 1 having a purity of 99.99% and higher relative to 100% purity.
31 . A method of making a joined ceramic body, the method comprising:
a. disposing a powder of silicon dioxide between surfaces of a first ceramic portion and a second ceramic portion to form a ceramic body assembly;
b. increasing the temperature of the ceramic body assembly to a sintering temperature sufficient to join first and second ceramic portions to form the joined ceramic body; and
c. lowering the temperature of the joined ceramic body,
wherein the silicon dioxide has a specific surface area of from 25 m 2 /g to 50 m 2 /g as measured according to ASTM C1274, and a purity of 99.999% and higher relative to 100% purity, wherein the process is carried out under condition to prepare a joined ceramic body having characteristics as disclosed in claim 1 .
32 . The method according to claim 31 wherein step a. further comprises a powder of aluminum oxide wherein the aluminum oxide has a purity of 99.99% and higher.
33 . The method according to claim 31 wherein step a. further comprises a powder of at least one rare earth oxide selected from the group consisting of Y2O3, La2O3, CeO2, Nd2O3, Pm2O3, Sm2O3, Eu2O3, Gd2O3, Tb4O7, Dy2O3, Ho2O3, Er2O3, Tm2O3, Yb2O3, Lu2O3 and combinations thereof having a purity of 99.99% and higher.
34 . The method according to claim 31 wherein the sintering temperature of step b. is between 1100 and 1500° C.
35 . The method according to claim 31 wherein step a. further comprises a powder of yttrium oxide having a purity of 99.995% and greater relative to 100% purity.
36 . The method according to claim 31 further comprising the step of:
d. machining the joined ceramic body to create a joined ceramic body component for use in a semiconductor processing chamber.
37 . The method according to claim 31 wherein the joined ceramic body component is selected from the group consisting of: a dielectric window or RF window, a ring, a nozzle or a gas injector, a shower head, a gas distribution plate, an etch chamber liner, a plasma source adapter, a gas inlet adapter, a diffuser, an electronic wafer chuck, a chuck, a puck, an ion suppressor element, a faceplate, and/or a protective ring in etch chambers.
38 . A joined ceramic body for production of semiconductor chamber components made by the process of claim 31 .
39 . A joined ceramic body according to claim 31 having a size of from 100 mm to 622 mm, preferably from 200 to 622 mm, preferably from 300 to 622 mm, preferably from 400 to 622 mm, more preferably from 450 to 622 mm, more preferably from 500 to 622 mm, more preferably 550 to 622 mm, each with regard to the longest extension of the ceramic body.
40 . A plasma resistant composition comprising:
a. silicon dioxide having a particle size of between 30 and 200 nm and a specific surface area as measured by BET methods of between 25 m2/g and 50 m2/g;
b. aluminum oxide; and
c. at least one rare earth oxide selected from the group consisting of Y2O3, La2O3, CeO2, Nd2O3, Pm2O3, Sm2O3, Eu2O3, Gd2O3, Tb4O7, Dy2O3, Ho2O3, Er2O3, Tm2O3, Yb2O3, Lu2O3 and combinations thereof; and
d. a suspension medium,
wherein the plasma resistant composition comprises a paste.
41 . The plasma resistant composition of claim 40 wherein the silicon dioxide has a total purity of at least 99.999% and higher relative to 100% purity.
42 . The plasma resistant composition of claim 40 wherein the at least one rare earth oxide comprises yttrium oxide having a purity of 99.99% and greater relative to 100% purity.
43 . The plasma resistant composition of claim 40 having a total purity of at least 99.995% and greater relative to 100% purity.
44 . The plasma resistant composition of claim 40 wherein the suspension medium comprises a liquid selected from the group consisting of water, ethanol, isopropanol, glycerol, and combinations thereof.
45 . The plasma resistant composition of claim 40 having a maximum particle size (d100) of from 4 to 6 microns.
46 . The plasma resistant composition of claim 40 wherein the aluminum oxide has a purity of 99.99% and higher relative to 100% purity.
47 . The plasma resistant composition of claim 40 wherein the at least one rare earth oxide selected from the group consisting of Y2O3, La2O3, CeO2, Nd2O3, Pm2O3, Sm2O3, Eu2O3, Gd2O3, Tb4O7, Dy2O3, Ho2O3, Er2O3, Tm2O3, Yb2O3, Lu2O3 and combinations thereof has a purity of 99.99% and higher.
48 . The plasma resistant composition of claim 40 comprising silicon dioxide in an amount of from 25 to 60% by weight, and the balance comprises a mixture of aluminum oxide in an amount of from 25 to 50% by weight, and at least one rare earth oxide in an amount of from 50 to 75% by weight.
49 . The plasma resistant composition of claim 48 wherein the rare earth oxide comprises yttrium oxide.
50 . The plasma resistant composition of claim 49 having plasma resistant composition comprising:
a. silicon dioxide having a particle size of between 30 and 200 nm and a specific surface area as measured by BET methods of between 25 m2/g and 50 m2/g;
b. aluminum oxide; and
c. at least one rare earth oxide selected from the group consisting of Y2O3, La2O3, CeO2, Nd2O3, Pm2O3, Sm2O3, Eu2O3, Gd2O3, Tb4O7, Dy2O3, Ho2O3, Er2O3, Tm2O3, Yb2O3, Lu2O3 and combinations thereof; and
d. a suspension medium,
wherein the plasma resistant composition comprises a paste.
51 . A joined ceramic body comprising:
a. first and second ceramic portions of aluminum oxide;
b. a joining layer formed between the first and second ceramic portions having a bond thickness of from 0.5 to 20 um,
wherein the first and second ceramic portions have a purity of 99.99% and higher, wherein the joining layer comprises a glass ceramic comprising an amorphous glassy phase and at least one crystalline ceramic phase wherein the joining layer has a total impurity content of 20 ppm and less relative to a mass of the joining layer.
52 . A joined ceramic body comprising:
a. first and second ceramic portions of yttrium aluminum oxide garnet (YAG, Y3Al5O12);
b. a joining layer formed between the first and second ceramic portions,
wherein the first and second ceramic portions have a purity of 99.99% and higher, wherein the joining layer comprises a glass ceramic comprising an amorphous glassy phase and at least one crystalline ceramic phase wherein the joining layer has a total impurity content of 20 ppm and less relative to a mass of the joining layer and a bond thickness of from 0.5 to 20 um.
53 . A joined ceramic body, comprising:
a. first and second ceramic portions of aluminum oxide;
b. a joining layer formed between the first and second ceramic portions,
wherein the first and second ceramic portions have a purity of 99.99% and higher and the joining layer comprises a glass ceramic comprising an amorphous glassy phase and at least one crystalline ceramic phase selected from the group consisting of mullite, alumina, Y2Si2O7, Y2SiO5, and Y3Al5O12 (yttrium aluminum garnet), wherein the joining layer has a total impurity content of 20 ppm and less and a bond thickness of between 0.5 and 20 um.
54 . A joined ceramic body comprising:
a. first and second ceramic portions of yttrium aluminum oxide garnet (YAG, Y3Al5O12);
b. a joining layer formed between the first and second ceramic portions, wherein the first and second ceramic portions have a purity of 99.99% and higher, wherein the joining layer comprises a glass ceramic comprising an amorphous glassy phase and at least one crystalline ceramic phase selected from the group consisting of mullite, alumina, Y2Si2O7, Y2SiO5, and Y3Al5O12 (yttrium aluminum garnet), wherein the joining layer has a total impurity content of 20 ppm and less relative to a mass of the joining layer and a bond thickness of from 0.5 to 20 um.