Method for collecting and recycling rare gases in semiconductor processing equipment
A closed-loop system with advanced gas separation techniques recycles noble gases like xenon and krypton from semiconductor processing, addressing inefficiencies in existing systems by minimizing losses and lowering costs through efficient recycling and flexible operation.
Patent Information
- Application Number
- JP2024090497
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-10
- Filing Date
- 2024-06-04
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2040-03-12
AI Technical Summary
The limited supply and high cost of noble gases like xenon, constrained by inefficient recovery systems that result in significant losses during semiconductor processing, necessitate improved methods for collecting and recycling these gases.
A closed-loop system with a recovery unit comprising a mixing tank, columns, storage tanks, and loopback lines, utilizing techniques such as pressure swing adsorption, vacuum swing adsorption, and cryogenic distillation to separate and recycle noble gases like xenon and krypton from buffer gases, allowing for constant recovery efficiency and variable process chamber flow rates.
The system achieves nearly zero loss of noble gases, reducing the cost of ownership by recycling them efficiently and enabling multiple process chambers to operate at different flow rates while maintaining high purity.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to semiconductor processing equipment. [Background technology]
[0002] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to a provisional patent application filed on March 13, 2019, assigned to U.S. Patent Application No. 62 / 817,702, the disclosure of which is incorporated herein by reference.
[0003] Demand for valuable noble gases is growing. Xenon is a trace component of the atmosphere (87 ppb) and a by-product of complex air separation processes, making it an expensive material for semiconductor processing and other applications. For example, xenon is increasingly used in applications such as anesthesia, ion propulsion engines, high-intensity discharges in lighting, plasma etching in semiconductor manufacturing, and as a plasma medium in discharge- or laser-produced plasmas. This growth in applications is often constrained by the limited supply of xenon. Capturing and recycling valuable noble gases such as xenon with the highest recovery efficiencies would be beneficial.
[0004] The amount of noble gas collected varies depending on the recovery efficiency of the noble gas recovery unit. Typical performance is in the range of 90% to 99.9%. Typically, 0.1% to 10% of the remaining noble gas, such as Xe, is lost when the buffer gas is vented or otherwise removed. Depending on the gas separation technology and implementation, improving recovery efficiency may be impossible or expensive.
[0005] For example, in semiconductor processing tools, the impact of loss of residual noble gases on long-term cost of ownership can be significant, especially when noble gas flow rates are high, on the order of several liters per minute, and the process chambers are operating nearly 24 hours a day, as is common in semiconductor manufacturing. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] U.S. Patent No. 9,168,467 [Patent Document 2] U.S. Patent No. 7,300,497 [Patent Document 3] U.S. Patent No. 8,535,414 Summary of the Invention [Problem to be solved by the invention]
[0007] Therefore, what is needed are new systems and methods for collecting and recycling noble gases. [Means for solving the problem]
[0008] In a first embodiment, a system is provided, comprising: a process chamber using xenon and / or krypton; and a recovery unit in fluid communication with the process chamber. The recovery unit includes: a mixing tank in fluid communication with the process chamber via a gas exhaust line; a first column in fluid communication with the mixing tank; a second column in fluid communication with the mixing tank; a first storage tank in fluid communication with the first column and the process chamber; a second storage tank in fluid communication with the second column and the process chamber; a first gas supply line connecting the first storage tank to the process chamber; a second gas supply line connecting the second storage tank to the process chamber; a first loopback line connecting the first gas supply line to the gas exhaust line; and a second loopback line connecting the second gas supply line to the exhaust line.
[0009] The gas exhaust line may include a vacuum pump.
[0010] The system may further include a compressor pump in fluid communication with the mixing tank, the first column, and the second column.
[0011] The recovery unit may use at least one of pressure swing adsorption, vacuum swing adsorption, or temperature swing adsorption.
[0012] The recovery unit may use cryogenic distillation.
[0013] The recovery unit may use membrane separation.
[0014] The recovery unit may be a closed-loop system that includes the process chamber.
[0015] The system may further include a plurality of the process chambers in fluid communication with the gas exhaust line, the first gas supply line, and the second gas supply line, each of the process chambers operable at a different gas supply flow rate.
[0016] In a second embodiment, a method is provided. The method includes processing a semiconductor wafer in a process chamber containing a process gas. The process gas includes a noble gas and a buffer gas. The process gas is pumped from the process chamber to a mixing tank through a gas exhaust line. The process gas is pumped from the mixing tank to a first column and a second column. The process gas is separated in the first column and the second column. The buffer gas is transferred from the first column to a first storage tank. The noble gas is transferred from the second column to a second storage tank. The buffer gas is transferred from the first storage tank to the process chamber, and the noble gas is transferred from the second storage tank to the process chamber.
[0017] The noble gas may include at least one of xenon or krypton, and the buffer gas may include at least one of argon, neon, oxygen, nitrogen, or hydrogen.
[0018] The method may further include diverting at least a portion of the noble gas from the second gas supply line toward the gas exhaust line rather than the process chamber.
[0019] The method may further include diverting at least a portion of the buffer gas from the first gas supply line toward the gas exhaust line rather than the process chamber.
[0020] Pumping the process gas from the process chamber to the mixing tank can use a vacuum pump. Pumping the process gas from the mixing tank to the first column and the second column can use a compressor pump.
[0021] The separating may use at least one of pressure swing adsorption, vacuum swing adsorption, or temperature swing adsorption.
[0022] The separating may use cryogenic distillation.
[0023] The separating may use membrane separation.
[0024] The method may be carried out in a closed system.
[0025] The separating may operate at a constant flow rate, while the transferring of the rare gas from the second storage tank may be performed at a variable flow rate.
[0026] For a better understanding of the nature and objects of the present disclosure, reference should be made to the following detailed description taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]
[0027] [Figure 1] FIG. 1 is a diagram of one embodiment of a system according to the present disclosure. [Figure 2] FIG. 1 is a block diagram of a method according to the present disclosure. [Figure 3] FIG. 10 is a diagram of another embodiment of a system according to the present disclosure. [Figure 4] FIG. 1 illustrates one embodiment of a system with multiple process chambers according to the present disclosure. [Figure 5] FIG. 1 illustrates another embodiment of a system with multiple process chambers according to the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0028] Although the claimed subject matter is described with reference to particular embodiments, other embodiments, including embodiments that do not provide all of the advantages and features described herein, are also within the scope of the present disclosure. Various changes in structure, logic, process steps, and electronic components may be made without departing from the scope of the present disclosure. Accordingly, the scope of the present disclosure is defined solely by reference to the appended claims.
[0029] Each embodiment disclosed herein includes a gas collection and recycling system and method. Highly valuable noble gases contained in the exhaust from a process chamber can be separated, purified, and resupplied with little or no loss. The reduced loss of noble gases, such as Xe, lowers the system's cost of ownership. Furthermore, while the recovery unit operates at constant flow conditions optimized to improve the combination of recovery efficiency and purity, the process chambers can operate at varying gas supply flow rates. Multiple process chambers can operate at different gas supply flow rates while sharing a single recovery unit.
[0030] In semiconductor processing equipment, noble gases such as xenon and krypton are often supplied to process chambers along with another buffer gas. Such combinations include, but are not limited to, Xe / Ar, Xe / Ne, Xe / He, Xe / O2, Xe / N2, Xe / H2, Kr / Ar, Kr / Ne, Kr / He, Kr / O2, Kr / N2, Kr / H2, and Xe / Kr. In discharge-produced or laser-produced plasmas, xenon atoms are highly ionized and excited to various high-energy ionic states under electron bombardment or laser fields. Transitions between densely branched electron configurations generate a broad range of radiation, including infrared (IR), visible, ultraviolet (UV), extreme ultraviolet (EUV), and x-rays. Buffer gases such as Ar, Ne, O2, N2, or H2 can be used to slow down (and eventually stop) energetic Xe or Kr ions, preventing them from etching the process chamber. Kr is considered a noble gas and can be used as a buffer gas for Xe. One or more buffer gases can be used with one or more noble gases. The exhaust from the process chamber is vacuum pumped and sent to a noble gas recovery unit, where Xe and / or Kr are separated from buffer gases such as Ar, Ne, O2, N2, or H2. The noble gases can be purified using gas separation techniques. Such purification techniques include adsorptive separation, cryogenic distillation (e.g., U.S. Patent No. 5,629,949), or membrane separation. Adsorptive separation can use pressure swing adsorption (e.g., U.S. Patent No. 5,629,949), vacuum swing adsorption (e.g., U.S. Patent No. 5,629,949), and temperature swing adsorption. Each of the patents disclosed herein is incorporated by reference in its entirety.
[0031] FIG. 1 is a diagram of one embodiment of a system 100. The system 100 includes a process chamber 101 and a recovery unit 200. The process chamber 101 is connected to a gas supply line 10, which may supply one or more noble gases and one or more buffer gases. The recovery unit 200 is in fluid communication with the process chamber 101. The process chamber 101 circulates the noble gases and buffer gases and may be part of a semiconductor inspection or metrology system, such as a light source or measurement chamber of the system 100. The process chamber 101 may also be part of a CD metrology system, a reticle inspection system, a laser-produced plasma source, an etch chamber, or other semiconductor processing, inspection, metrology, or review system. For example, the process chamber 101 may be part of a xenon plasma focused ion beam system or a xenon plasma etch system. Applications outside the semiconductor industry are also possible. For example, the process chamber 101 may be part of a xenon thruster test chamber used in space propulsion research.
[0032] The recovery unit 200 includes a mixing tank 105, which is in fluid communication with the process chamber 101 via gas exhaust lines 11 / 12 / 14. The gas exhaust lines 11 / 12 / 14 include a dead-end inlet section 14. A first column 107 and a second column 108 are in fluid communication with the mixing tank 105 via conduits 15 / 16. A first storage tank 109 is in fluid communication with the first column 107 (via conduit 17), the process chamber 101, and the gas exhaust lines 11 / 12 / 14. A second storage tank 110 is in fluid communication with the second column 108 (via conduit 18), the process chamber 101, and the gas exhaust lines 11 / 12 / 14. Other connections between the second column 108 and the first storage tank 109 or between the first column 107 and the second storage tank 110 are also possible. A first gas supply line 23 connects the first storage tank 109 to the process chamber 101. A second gas supply line 24 connects the second storage tank 110 to the process chamber 101.
[0033] The gas exhaust lines 11 / 12 / 14 may include a vacuum pump 102. The conduits 15 / 16 connecting the mixing tank 105 to the first column 107 and the second column 108 may include a compressor pump 106.
[0034] Gas exhaust 11 from the process chamber 101 can be pumped by vacuum pump 102 and sent to the recovery unit 200. Gases received by the recovery unit 200 can be held in a mixing tank 105 and then pumped to gas separation columns 107, 108, where they are pressurized by a compressor pump 106. The packing material, temperature, and pressure (or vacuum) in the gas separation columns 107, 108 can vary depending on the gas separation technology selected. Typically, a purified noble gas, such as Xe, and a purified buffer gas, such as N2, emerge at opposite ends of the columns 107, 108. These gases can use specific temperature / pressure profiles within these columns. The purified noble gas, such as Xe, can be stored in a second storage tank 110 and returned to the process chamber 101 via a second gas supply line 24. The second storage tank 110 can have less than 100% noble gas and can contain certain impurities or small amounts of buffer gas. A purified, low-cost buffer gas, such as N2, can be stored in a first storage tank 109 and returned to the process chamber 101 via the first gas supply line 23. The first storage tank 109 can have less than 100% buffer gas and can include certain impurities or small amounts of noble gases. Pumps can be used to transport the gas through the first and second gas supply lines 23, 24.
[0035] The system 100 may include a first loopback line 21 connecting the first gas supply line 23 to the gas exhaust line 11 / 12 / 14. The flow from the first loopback line 21 combined with the flow from the gas exhaust line 11 / 12 / 14 may form the total inlet section 14.
[0036] The system 100 may include a second loopback line 22 connecting the second gas supply line 24 to the gas exhaust line 11 / 12 / 14. The flow from the second loopback line 22 combined with the flow from the gas exhaust line 11 / 12 / 14 may form the total inlet section 14.
[0037] The first and second loopback lines 21 and 22 are provided for the flow output from the recovery unit 200. The flow rates of the first gas supply line 23 and the second gas supply line 24 to the process chamber 101 can be adjusted (e.g., using one or more valves) or stopped, without affecting the state of the recovery unit 200. The flow diverted from the first gas supply line 23 is directed to the first loopback line 21. The flow diverted from the second gas supply line 24 is directed to the second loopback line 22. The flow rate diverted to the first loopback line 21 or the second loopback line 22 can be 0% to 100%, and the first and second loopback lines 21 and 22 can have different diverted inflow rates. The gas flow rate in the total inlet section 14 of the recovery unit 200 and the partial pressures within the total inlet section 14 can be maintained constant.
[0038] The gas exhaust line 12, the first loopback line 21, the second loopback line 22, the first gas supply line 23, and the second gas supply line 24 may include one-way valves or other types of valves.
[0039] The system 100 may require a specific noble gas flow rate and a specific buffer gas flow rate, which are supplied via the first gas supply line 23 and the second gas supply line 24. The first storage tank 109 and the second storage tank 110 may provide a constant flow rate that is greater than the maximum demand of the process chamber 101. The excess may be recycled, for example, in a continuous manner, through the recovery unit 200.
[0040] The recovery unit 200 may use one or more of pressure swing adsorption, vacuum swing adsorption, temperature swing adsorption, cryogenic distillation, or membrane separation. Other techniques are possible.
[0041] 1, a first storage tank 190 is added for buffer gases, such as N, which are recycled to the process chamber 101, as well as a noble gas, such as Xe, from a second storage tank 110. In one example, the recovery unit 200 is a closed-loop system that includes the process chamber 101. Any residual noble gas in the first storage tank 109 and the first gas supply line 23 is retained within the system with virtually no loss.
[0042] 2 is a block diagram of a method 300 that may be applied to the system 100 of FIG. 1. In step 301, a semiconductor wafer is processed in a process chamber containing a process gas. The process gas includes a noble gas and a buffer gas. The noble gas may include at least one of xenon or krypton. The buffer gas may include at least one of argon, neon, oxygen, nitrogen, or hydrogen. Other noble gases or buffer gases are also possible.
[0043] In step 302, the process gas is sent from the process chamber through a gas exhaust line to a mixing tank, for example, using a vacuum pump. In step 303, the process gas is sent from the mixing tank to a first column and a second column, for example, using a compressor pump. In step 304, the process gas is separated in the first column and the second column. This separation may use one or more of pressure swing adsorption, vacuum swing adsorption, or temperature swing adsorption, cryogenic distillation, or membrane separation.
[0044] In step 305, a buffer gas is delivered from the first column to a first storage tank. In step 306, a noble gas is delivered from the second column to a second storage tank. In step 307, the buffer gas and noble gas are delivered to the process chamber. Thus, method 300 can be performed in a closed system.
[0045] In one case, the separation operates at constant flow conditions, but the noble gas may be delivered at a varying flow rate.
[0046] In one case, at least a portion of the noble gas is diverted from the second gas supply line to the gas exhaust line, and / or at least a portion of the buffer gas is diverted from the gas supply line to the gas exhaust line. In this way, some or all of the noble gas and / or buffer gas bypasses the process chamber. For example, the process chamber may be out of use or undergoing repair. The gases may be recirculated by the recycling system until the process chamber is back online.
[0047] As an example, the gas supply to the process chamber may be stopped. The port connecting the exhaust from the process chamber may be closed and the exhaust may be switched to ambient air. The process chamber may be pumped out and evacuated. The associated recovery unit may be adjusted to design operating conditions. The recovery unit may be operated with the first and second loopback lines fully open. This may stabilize recovery at an optimal combination of recovery efficiency and purity. The gas exhaust line may be switched, connected, or opened to a full inlet section. The flow rates of the first and second gas supply lines may be set to match the process chamber. The flow rate of the first loopback line may be the difference between the output of the first storage tank minus the flow rate of the first gas supply line. The flow rate of the second loopback line may be the difference between the output of the second storage tank minus the flow rate of the second gas supply line.
[0048] As shown in FIG. 3, the system 100 may further include a gas scraper 103 in fluid communication with the process chamber 101 and the mixing tank 105. The gas scraper 103 may be on the gas exhaust line 11 / 12 / 14. The gas scraper 103 may remove contaminants from the process chamber 101. Such contaminants may include O2 leaked into the chamber from the ambient air, hydrocarbons in the vacuum lubricant, outgassing from the chamber materials, or other sources of contamination. The gas scraper 103 may include, for example, one or more of a filter, an absorber, a cryogenic trap, a getter, or a catalytic converter.
[0049] As shown in FIG. 4, multiple process chambers 101-1 through 101-4 may be used in the system 202. While four process chambers are shown, more or fewer process chambers may be included. The maximum number of process chambers may be dictated by the capabilities of the recovery unit 200. The process chambers 101-1 through 101-4 are each in fluid communication with gas exhaust lines 11 / 12 / 14 and may operate at different gas supply flow rates, such as using mass flow controllers or other controllers. Each process chamber is connected to gas supply lines 10-1 through 10-4, first gas supply lines 23-1 through 23-4, and second gas supply lines 24-1 through 24-4. Each chamber has a gas supply line 10-1 through 10-4, although fewer than the total number of chambers may have one gas supply line. Some chambers may be connected to only the first and second gas supply lines.
[0050] As shown in system 203 of FIG. 5, process chambers 101-1 through 101-4 may each have a separate gas scraper 103-1 through 103-4.
[0051] Using the systems and methods disclosed herein, a completely closed-loop system for collecting and recycling gases can be implemented. As a result, loss of valuable noble gases can be nearly eliminated. Using a loopback line, the recovery unit can operate at a constant inlet flow rate optimized for the best combination of recovery efficiency and purity, while the process chamber can operate at a variable gas supply flow rate. Gas scrapers can be added to remove contamination and / or impurities that affect the performance of the recovery unit or process chamber. Multiple process chambers can share a single recovery unit. Each of these process chambers can operate at a different gas supply flow rate. Each of these process chambers can use a separate gas scraper to remove contamination and / or impurities.
[0052] In one example, the system disclosed herein can operate with only 0.01% loss of noble gas, which can occur during gas scraper regeneration or process chamber cleaning.
[0053] In one example, a xenon laser-produced plasma (LPP) soft x-ray source uses N2 as a buffer gas to stop the high-energy xenon ions generated in the plasma, preventing them from etching the chamber and damaging optical components. This soft x-ray source uses a recovery unit to recover the xenon from the N2 buffer gas. In this example, the recovery unit is a commercially available pressure swing adsorption (PSA) recovery unit. Using embodiments disclosed herein can reduce the risk of slow drift of the recovery unit over time and unexpected degradation of xenon recovery efficiency. Recovery efficiency is a factor that affects the cost of ownership of this tool. Sharing a single recovery unit across multiple tools can further reduce the cost of ownership. The recovery unit can be scaled to match the desired flow rate.
[0054] Although the present disclosure has been described with respect to one or more particular embodiments, it will be understood that other embodiments of the present disclosure may be made without departing from the scope of the present disclosure. Accordingly, the present disclosure is deemed to be limited only by the appended claims and their reasonable interpretation.
Claims
1. 1. A method comprising: processing a semiconductor wafer in a process chamber containing a process gas, the process gas including a noble gas and a buffer gas; pumping the process gas from the process chamber through a gas exhaust line to a mixing tank; pumping the process gas from the mixing tank to a first column and a second column; separating the process gas in the first column and the second column; directing the buffer gas from the first column to a first storage tank; sending the noble gas from the second column to a second storage tank; delivering the buffer gas from the first storage tank to the process chamber and the noble gas from the second storage tank to the process chamber; The method includes:
2. 10. The method of claim 1, wherein the noble gas comprises at least one of xenon or krypton, and the buffer gas comprises at least one of argon, neon, oxygen, nitrogen, or hydrogen.
3. 10. The method of claim 1, further comprising diverting at least a portion of the noble gas from a second gas supply line toward the gas exhaust line rather than the process chamber.
4. 10. The method of claim 1, further comprising diverting at least a portion of the buffer gas from a first gas supply line toward the gas exhaust line rather than the process chamber.
5. 10. The method of claim 1, wherein pumping the process gas from the process chamber to the mixing tank uses a vacuum pump, and pumping the process gas from the mixing tank to the first column and the second column uses a compressor pump.
6. 10. The method of claim 1, wherein the separating uses at least one of pressure swing adsorption, vacuum swing adsorption, temperature swing adsorption, cryogenic distillation, or membrane separation.
7. The method of claim 1 performed in a closed system.
8. 10. The method of claim 1, wherein the separating operates at a constant flow rate condition, but the transferring of the noble gas from the second storage tank is performed at a variable flow rate.
Citation Information
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