Patent · US2016163561A1 · A1 · US
Technique to deposit sidewall passivation for high aspect ratio cylinder etch
- (11) Publication number
- US2016163561A1
- (21) Application number
- 14/724,574
- (22) Filing date
- 2015-05-28
- (30) Priority date
- 2014-12-04
- (43) Publication date
- 2016-06-09
- (52) CPC
- H10P Generic processes or apparatus for the manufacture or treatment of devices covered by class H10: 50/242, 14/6339, 14/683, 14/687, 50/283
- C23C Coating metallic material; coating material with metallic material; surface treatment of metallic material by diffusion into the surface, by chemical conversion or substitution; coating by vacuum evaporation, by sputtering, by ion implantation or by chemical vapour deposition, in general: 16/00, 16/045, 16/45525, 16/45544, 16/50, 16/52
- H01J Electric discharge tubes or discharge lamps: 2237/334, 37/32009, 37/32091, 37/32449, 37/32513, 37/32577, 37/32623, 37/32651, 37/32871, 37/32899
- H01L Electric elements: 21/31116, 21/31138, 27/108, 27/115
- H10B Electronic memory devices: 12/03, 41/27, 43/27
- (73) Assignee
- LAM RES CORP
- (54) Title
- Technique to deposit sidewall passivation for high aspect ratio cylinder etch
- (57) Abstract
Various embodiments herein relate to methods, apparatus and systems for forming a recessed feature in dielectric material on a semiconductor substrate. Separate etching and deposition operations are employed in a cyclic manner. Each etching operation partially etches the feature. Each deposition operation forms a protective coating on the sidewalls of the feature to prevent lateral etch of the dielectric material during the etching operations. The protective coating may be deposited using methods that result in formation of the protective coating along substantially the entire length of the sidewalls. The protective coating may be deposited using particular reactants and/or reaction mechanisms that result in substantially complete sidewall coating at relatively low temperatures without the use of plasma. In some cases the protective coating is deposited using molecular layer deposition techniques.
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Claims (1)
- A method of forming an etched feature in a stack comprising a dielectric material on a semiconductor substrate, the method comprising: (a) generating a first plasma comprising an etching reactant, exposing the substrate to the first plasma, and partially etching the feature in the stack; (b) after (a), depositing a protective film on sidewalls of the feature by (i) exposing the substrate to a first reactant and allowing the first reactant to adsorb onto the substrate, (ii) exposing the substrate to a second reactant, wherein the first and second reactants react with one another to form the protective film, and (iii) repeating (i) and (ii) in a cyclic manner until the protective film reaches a target thickness, wherein the protective film is an organic polymeric film and is deposited along substantially the entire depth of the feature; (c) repeating (a)-(b) until the feature is etched to a final depth, wherein the protective film deposited in (b) substantially prevents lateral etch of the feature during (a), and wherein the feature has an aspect ratio of about 5 or greater at its final depth. 2. The method of claim 1, wherein depositing the protective film in (b) is accomplished without exposing the substrate to plasma energy. 3. The method of claim 2, wherein the first reactant comprises an acyl halide or an acid anhydride, and wherein the second reactant comprises at least one of a diamine, a diol, a thiol, and a trifunctional compound. 4. The method of claim 3, wherein the first reactant comprises a diacyl chloride. 5. The method of claim 4, wherein the first reactant comprises malonyl chloride. 6. The method of claim 3, wherein the second reactant comprises a diamine. 7. The method of claim 6, wherein the second reactant comprises ethylenediamine. 8. The method of claim 7, wherein the first reactant comprises malonyl chloride. 9. The method of claim 3, wherein the first reactant comprises one or more materials selected from the group consisting of: ethanedioyl dichloride, malonyl chloride, succinyl dichloride, pentanedioyl dichloride, and maleic anhydride; and wherein the second reactant comprises one or more materials selected from the group consisting of: 1,2-ethanediamine, 1,3-propanediamine, 1,4-butanediamine, ethylene glycol, 1,3-propanediol, 1,4-butanediol, 1,2-ethanedithiol, 1,3-propanedithiol, 1,4-butanedithiol, (±)-3-amino-1,2-propanediol, glycerol, bis(hexamethylene)triamine, melamine, diethylenetriamine, butanetriol, cyanuric chloride, and trim ethyl aluminum. 10. The method of claim 1, wherein the protective coating comprises a polyamide and/or a polyester. 11. The method of claim 1, wherein depositing the protective film in (b) occurs in a reaction chamber, and wherein depositing the protective film in (b) further comprises purging the reaction chamber at least once during each iteration of operation (b). 12. The method of claim 4, wherein depositing the protective film in (b) comprises purging the reaction chamber at least twice during each iteration of operation (b), a first purge occurring between delivery of the first reactant in (i) and subsequent delivery of the second reactant in (ii), and a second purge occurring between delivery of the second reactant in (ii) and subsequent delivery of the first reactant in a subsequent iteration of (i). 13. The method of claim 1, wherein at the final depth the feature has (i) an aspect ratio of about 20 or greater, and (ii) a maximum critical dimension that is no more than about 10% greater than the critical dimension at the bottom of the feature. 14. The method of claim 1, wherein the feature is formed while forming a VNAND device, and wherein the stack comprises alternating layers of (i) a silicon oxide material, and (ii) a silicon nitride material or polysilicon material. 15. The method of claim 1, wherein the feature is formed in the context of forming a DRAM device, and wherein the dielectric material comprises silicon oxide. 16. The method of claim 1, wherein the feature has an aspect ratio of about 50 or greater at its final depth. 17. The method of claim 1, wherein (a) and (b) are repeated at least one time, wherein (b) may or may not be performed using the same reactants during each iteration. 18. An apparatus for forming an etched feature in a stack on a semiconductor substrate, the stack comprising a dielectric material, the apparatus comprising: one or more reaction chambers, wherein at least one reaction chamber is designed or configured to perform etching, and wherein at least one reaction chamber is designed or configured to perform deposition, each reaction chamber comprising: an inlet for introducing process gases to the reaction chamber, and an outlet for removing material from the reaction chamber; and a controller having instructions for: (a) generating an etching plasma comprising an etching reactant, exposing the substrate to the etching plasma, and partially etching the feature in the stack, wherein (a) is performed in the reaction chamber designed or configured to perform etching; (b) after (a), depositing a protective film on sidewalls of the feature by (i) exposing the substrate to a first reactant and allowing the first reactant to adsorb onto the substrate, (ii) exposing the substrate to a second reactant, wherein the first and second reactants react with one another to form the protective film, and (iii) repeating (i) and (ii) in a cyclic manner until the protective film reaches a target thickness, wherein the protective film is polymeric and is deposited along substantially the entire depth of the feature, and wherein (b) is performed in the reaction chamber designed or configured to perform deposition; (c) repeating (a)-(b) until the feature is etched to a final depth, wherein the protective film deposited in (b) substantially prevents lateral etch of the feature during (a), and wherein the feature has an aspect ratio of about 5 or greater at its final depth. 19. The apparatus of claim 18, wherein the reaction chamber designed or configured to perform etching is the same reaction chamber designed or configured to perform deposition, such that both (a) and (b) occur in the same reaction chamber. 20. The apparatus of claim 18, wherein the reaction chamber designed or configured to perform etching is different from the reaction chamber designed or configured to perform deposition, and wherein the controller further comprises instructions to transfer the substrate between the reaction chamber designed or configured to perform etching and the reaction chamber designed or configured to perform deposition. 21. The apparatus of claim 18, wherein the controller comprises instructions to deposit the protective film in (b) without the use of plasma.
Record as JSON
{
"publication_number": "US2016163561A1",
"country": "US",
"kind": "A1",
"title": "Technique to deposit sidewall passivation for high aspect ratio cylinder etch",
"abstract": "Various embodiments herein relate to methods, apparatus and systems for forming a recessed feature in dielectric material on a semiconductor substrate. Separate etching and deposition operations are employed in a cyclic manner. Each etching operation partially etches the feature. Each deposition operation forms a protective coating on the sidewalls of the feature to prevent lateral etch of the dielectric material during the etching operations. The protective coating may be deposited using methods that result in formation of the protective coating along substantially the entire length of the sidewalls. The protective coating may be deposited using particular reactants and/or reaction mechanisms that result in substantially complete sidewall coating at relatively low temperatures without the use of plasma. In some cases the protective coating is deposited using molecular layer deposition techniques.",
"claims": [
"1. A method of forming an etched feature in a stack comprising a dielectric material on a semiconductor substrate, the method comprising: (a) generating a first plasma comprising an etching reactant, exposing the substrate to the first plasma, and partially etching the feature in the stack; (b) after (a), depositing a protective film on sidewalls of the feature by (i) exposing the substrate to a first reactant and allowing the first reactant to adsorb onto the substrate, (ii) exposing the substrate to a second reactant, wherein the first and second reactants react with one another to form the protective film, and (iii) repeating (i) and (ii) in a cyclic manner until the protective film reaches a target thickness, wherein the protective film is an organic polymeric film and is deposited along substantially the entire depth of the feature; (c) repeating (a)-(b) until the feature is etched to a final depth, wherein the protective film deposited in (b) substantially prevents lateral etch of the feature during (a), and wherein the feature has an aspect ratio of about 5 or greater at its final depth. 2. The method of claim 1, wherein depositing the protective film in (b) is accomplished without exposing the substrate to plasma energy. 3. The method of claim 2, wherein the first reactant comprises an acyl halide or an acid anhydride, and wherein the second reactant comprises at least one of a diamine, a diol, a thiol, and a trifunctional compound. 4. The method of claim 3, wherein the first reactant comprises a diacyl chloride. 5. The method of claim 4, wherein the first reactant comprises malonyl chloride. 6. The method of claim 3, wherein the second reactant comprises a diamine. 7. The method of claim 6, wherein the second reactant comprises ethylenediamine. 8. The method of claim 7, wherein the first reactant comprises malonyl chloride. 9. The method of claim 3, wherein the first reactant comprises one or more materials selected from the group consisting of: ethanedioyl dichloride, malonyl chloride, succinyl dichloride, pentanedioyl dichloride, and maleic anhydride; and wherein the second reactant comprises one or more materials selected from the group consisting of: 1,2-ethanediamine, 1,3-propanediamine, 1,4-butanediamine, ethylene glycol, 1,3-propanediol, 1,4-butanediol, 1,2-ethanedithiol, 1,3-propanedithiol, 1,4-butanedithiol, (±)-3-amino-1,2-propanediol, glycerol, bis(hexamethylene)triamine, melamine, diethylenetriamine, butanetriol, cyanuric chloride, and trim ethyl aluminum. 10. The method of claim 1, wherein the protective coating comprises a polyamide and/or a polyester. 11. The method of claim 1, wherein depositing the protective film in (b) occurs in a reaction chamber, and wherein depositing the protective film in (b) further comprises purging the reaction chamber at least once during each iteration of operation (b). 12. The method of claim 4, wherein depositing the protective film in (b) comprises purging the reaction chamber at least twice during each iteration of operation (b), a first purge occurring between delivery of the first reactant in (i) and subsequent delivery of the second reactant in (ii), and a second purge occurring between delivery of the second reactant in (ii) and subsequent delivery of the first reactant in a subsequent iteration of (i). 13. The method of claim 1, wherein at the final depth the feature has (i) an aspect ratio of about 20 or greater, and (ii) a maximum critical dimension that is no more than about 10% greater than the critical dimension at the bottom of the feature. 14. The method of claim 1, wherein the feature is formed while forming a VNAND device, and wherein the stack comprises alternating layers of (i) a silicon oxide material, and (ii) a silicon nitride material or polysilicon material. 15. The method of claim 1, wherein the feature is formed in the context of forming a DRAM device, and wherein the dielectric material comprises silicon oxide. 16. The method of claim 1, wherein the feature has an aspect ratio of about 50 or greater at its final depth. 17. The method of claim 1, wherein (a) and (b) are repeated at least one time, wherein (b) may or may not be performed using the same reactants during each iteration. 18. An apparatus for forming an etched feature in a stack on a semiconductor substrate, the stack comprising a dielectric material, the apparatus comprising: one or more reaction chambers, wherein at least one reaction chamber is designed or configured to perform etching, and wherein at least one reaction chamber is designed or configured to perform deposition, each reaction chamber comprising: an inlet for introducing process gases to the reaction chamber, and an outlet for removing material from the reaction chamber; and a controller having instructions for: (a) generating an etching plasma comprising an etching reactant, exposing the substrate to the etching plasma, and partially etching the feature in the stack, wherein (a) is performed in the reaction chamber designed or configured to perform etching; (b) after (a), depositing a protective film on sidewalls of the feature by (i) exposing the substrate to a first reactant and allowing the first reactant to adsorb onto the substrate, (ii) exposing the substrate to a second reactant, wherein the first and second reactants react with one another to form the protective film, and (iii) repeating (i) and (ii) in a cyclic manner until the protective film reaches a target thickness, wherein the protective film is polymeric and is deposited along substantially the entire depth of the feature, and wherein (b) is performed in the reaction chamber designed or configured to perform deposition; (c) repeating (a)-(b) until the feature is etched to a final depth, wherein the protective film deposited in (b) substantially prevents lateral etch of the feature during (a), and wherein the feature has an aspect ratio of about 5 or greater at its final depth. 19. The apparatus of claim 18, wherein the reaction chamber designed or configured to perform etching is the same reaction chamber designed or configured to perform deposition, such that both (a) and (b) occur in the same reaction chamber. 20. The apparatus of claim 18, wherein the reaction chamber designed or configured to perform etching is different from the reaction chamber designed or configured to perform deposition, and wherein the controller further comprises instructions to transfer the substrate between the reaction chamber designed or configured to perform etching and the reaction chamber designed or configured to perform deposition. 21. The apparatus of claim 18, wherein the controller comprises instructions to deposit the protective film in (b) without the use of plasma."
],
"cpc": [
"H10P 50/242",
"C23C 16/00",
"C23C 16/045",
"C23C 16/45525",
"C23C 16/45544",
"C23C 16/50",
"C23C 16/52",
"H01J 2237/334",
"H01J 37/32009",
"H01J 37/32091",
"H01J 37/32449",
"H01J 37/32513",
"H01J 37/32577",
"H01J 37/32623",
"H01J 37/32651",
"H01J 37/32871",
"H01J 37/32899",
"H01L 21/31116",
"H01L 21/31138",
"H01L 27/108",
"H01L 27/115",
"H10B 12/03",
"H10B 41/27",
"H10B 43/27",
"H10P 14/6339",
"H10P 14/683",
"H10P 14/687",
"H10P 50/283"
],
"assignees": [
"LAM RES CORP"
],
"filing_date": "2015-05-28",
"publication_date": "2016-06-09",
"priority_date": "2014-12-04",
"application_number": "US-201514724574-A",
"family_id": "56094959"
}
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