Optimization of operating conditions within the mitigation device
By monitoring carbon monoxide concentrations and adjusting operating parameters, the method optimizes the performance of mitigation devices in processing effluent streams, addressing the challenges of by-product formation and composition uncertainty.
Patent Information
- Application Number
- JP2022525689
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-11-05
- Filing Date
- 2020-11-03
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2040-11-03
AI Technical Summary
Existing mitigation devices face challenges in setting optimal operating conditions for processing effluent streams, often leading to the production of undesired by-products and requiring prior knowledge of the effluent stream composition.
A method and apparatus that determine the concentration of carbon monoxide produced during the processing of effluent streams and adjust the operating parameters of the mitigation device, such as the fuel/oxidant ratio, to optimize the removal of gases and minimize unwanted by-products.
This approach allows for the optimization of mitigation device performance without prior knowledge of the effluent stream composition, reducing unwanted by-products and improving the efficiency of gas removal.
Smart Images

Figure 0007675714000001 
Figure 0007675714000002 
Figure 0007675714000003
Abstract
Description
[Technical field]
[0001] The field of the invention relates to methods and abatement devices configured to treat effluent streams from a processing tool. [Background technology]
[0002] Abatement devices are known and are typically used to treat exhaust gas streams from manufacturing process tools used in, for example, the semiconductor or flat panel display manufacturing industries. During such manufacturing, residual harmful and / or global warming gases remain in the exhaust gas stream pumped from the processing tools. Due to their nature, these must be removed from the exhaust gas before it is released into the atmosphere, and may be undesirable as they are known to have adverse effects on the environment.
[0003] Known abatement devices, such as radiant burners, use combustion to remove undesirable compounds from an exhaust gas stream to meet target concentrations in the exhaust stream from the abatement device. Typically, the exhaust gas stream is a nitrogen stream containing residual gases such as hydrogen, ammonia, tetraethoxysilane (TEOS), and / or nitrous oxide, as well as other compounds depending on the process steps performed in the processing tool. A fuel gas and / or an oxidant gas is mixed with the exhaust gas stream, and the gas stream mixture is conveyed into a combustion chamber bounded laterally by an outlet face of a perforated gas burner. Fuel gas and air are simultaneously supplied to the perforated burner and affect flameless combustion at the outlet face, with the amount of air passing through the perforated burner being sufficient not only to consume the fuel gas supplied to the burner, but also to contribute towards the destruction of combustible materials in the gas stream mixture injected into the combustion chamber.
[0004] Hydrogen, ammonia, and TEOS are easily oxidizable gases and are typically found in significant concentrations in the exhaust gas stream, but additional oxidizers (such as air or oxygen) must be added to the effluent stream to achieve the required abatement levels. U.S. Patent No. 8,647,111 discloses that an ammonia / hydrogen mixture can be combusted by adding an appropriate amount of air. U.S. Patent No. 5,938,422 discloses that TEOS can be destroyed by mixing it with oxygen prior to combustion in the combustion zone.
[0005] Nitrous oxide is an oxidizing gas that is desirably ultimately reduced to nitrogen by the addition of fuel gas at the time it is injected into the combustion chamber. Incomplete reduction of nitrous oxide leads to the formation of nitric oxide and nitrogen dioxide (collectively known as NOx), which are unwanted by-products as they contribute to acid rain and other environmental problems. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] U.S. Patent No. 8,647,111 [Patent Document 2] U.S. Pat. No. 5,938,422 Summary of the Invention [Problem to be solved by the invention]
[0007] Although techniques exist for treating exhaust gas streams, each has its own drawbacks. It would therefore be desirable to provide improved techniques for treating exhaust gas streams. [Means for solving the problem]
[0008] According to a first aspect, there is provided a method of optimizing operating conditions in an abatement device configured to treat an effluent stream from a processing tool, the method comprising determining a concentration of carbon monoxide produced by the abatement device when treating the effluent stream, and adjusting operating parameters of the abatement device in response to the concentration of carbon monoxide.
[0009] The first aspect recognizes that a problem with existing approaches to treating effluent streams is that it can be difficult to set operating conditions for an abatement device that effectively treats the effluent stream. Similarly, some operating conditions that may be suitable for treating the effluent stream may lead to the production of undesirable by-products. Furthermore, existing approaches may be complex and / or require prior knowledge of the composition of the effluent stream being treated. However, the first aspect recognizes that by monitoring the carbon dioxide present when treating the effluent stream, it is possible to optimize operating conditions for removal of gases in the effluent stream being treated to reduce undesirable by-products. Accordingly, a method is provided. The method may be for optimizing or adjusting operation of an abatement device that treats an effluent stream from a processing tool. The method may include determining or identifying a concentration of carbon monoxide generated or present when the abatement device treats the effluent stream. The method may include adjusting or altering operating parameters or operation of the abatement device in response to the generated or present carbon monoxide. Adjusting the operating parameters adjusts operation of the abatement device. In this manner, the performance or operation of the abatement device can be controlled by simply adjusting the operating parameters of the abatement device in response to the amount of carbon monoxide being produced to create conditions within the abatement device that improve removal of the compound being processed within the abatement device compared to the conditions before the adjustments were made, while reducing undesirable by-products and without requiring prior knowledge of the contents of the effluent stream.
[0010] In one embodiment, the determining step includes measuring the concentration of carbon monoxide present in the abatement device exhaust. Thus, the amount of carbon monoxide present in the abatement device exhaust containing the treated effluent stream can be determined.
[0011] In one embodiment, the determining step includes measuring the concentration of carbon monoxide with an infrared spectrometer. Carbon monoxide can therefore be measured by an infrared spectrometer that is not susceptible to contamination or degradation and is highly specific to the target analyte. The infrared sensor has high response and recovers quickly even when saturated with the analyte.
[0012] In one embodiment, the operating parameters include a fuel / oxidizer ratio such that the amount of fuel to oxidizer supplied to the abatement device can be adjusted in response to the concentration of carbon monoxide.
[0013] In one embodiment, the adjusting step includes changing the fuel / oxidizer ratio to reduce the concentration of carbon monoxide. Thus, the amount of fuel to oxidizer can be changed to reduce the amount of carbon monoxide.
[0014] In one embodiment, the adjusting step includes determining whether changing the fuel / oxidizer ratio reduces the concentration of carbon monoxide, and if so, maintaining the change, such that if a change in the amount of fuel to the oxidizer reduces the amount of carbon monoxide, the change in the amount of fuel to the oxidizer is maintained.
[0015] In one embodiment, the adjusting step includes determining whether changing the fuel / oxidizer ratio increases the concentration of carbon monoxide, and if so, reversing the change, such that a change made to the amount of fuel to oxidizer is discarded if the change would increase the amount of carbon monoxide.
[0016] In one embodiment, the adjusting step includes varying the oxidizer supply. Thus, the fuel to air ratio can be changed by changing the amount of oxidizer supplied to the abatement device. This allows the amount of fuel supply to be kept constant and allows adjustments to be made by varying only one component.
[0017] In one embodiment, the adjusting step includes increasing the supply of oxidant, determining whether the concentration of carbon monoxide increases, and if so, reducing the supply of oxidant. Thus, the amount of oxidant can be increased and, as a result, if the concentration of carbon monoxide increases, the increase in the amount of oxidant can be reversed.
[0018] In one embodiment, the adjusting step includes reducing the supply of oxidant, determining whether the concentration of carbon monoxide increases, and if so, increasing the supply of oxidant. Thus, the amount of oxidant can be reduced and, if the concentration of carbon monoxide increases, the reduction in the amount of oxidant can be reversed.
[0019] It will be appreciated that the above techniques aid in identifying the minimum amount of carbon monoxide produced that will be experienced when treating an effluent stream having excess hydrogen.
[0020] In one embodiment, the adjusting step includes determining whether changing the fuel / oxidizer ratio reduces the concentration of carbon monoxide toward a threshold amount, and if so, retaining the change. Thus, if a change in the amount of fuel to oxidizer causes the amount of carbon monoxide produced to be closer to the threshold amount of carbon monoxide than before the change was made, the change is retained.
[0021] In one embodiment, the adjusting step includes determining whether changing the fuel / oxidizer ratio reduces the concentration of carbon monoxide below a threshold amount, and if so, reversing the change. Thus, a change made to the amount of fuel to oxidizer can be discarded if the change reduces the amount of carbon monoxide below the threshold amount of carbon monoxide.
[0022] In one embodiment, the adjusting step includes varying the supply of fuel such that the amount of fuel supplied to the abatement device can be altered, which can allow the amount of oxidant supply to the abatement device to be kept constant.
[0023] In one embodiment, the regulating step includes determining whether the concentration of carbon monoxide exceeds a threshold amount and, if so, reducing the supply of fuel. Thus, if it is determined that the amount of carbon monoxide exceeds the threshold amount of carbon monoxide, the amount of fuel supplied can be reduced.
[0024] In one embodiment, the adjusting step includes determining whether the concentration of carbon monoxide is below a threshold amount and, if so, increasing the supply of fuel such that if it is determined that the amount of carbon monoxide will not be able to achieve the threshold amount of carbon monoxide, the amount of fuel supplied to the abatement device can be increased.
[0025] It will be appreciated that the above-described techniques aid in identifying an acceptable target amount of carbon monoxide produced that would be experienced when treating an effluent stream having excess nitrous oxide.
[0026] In one embodiment, the adjusting step includes varying the supply of oxidizer such that the amount of oxidizer supplied to the abatement device can be changed. This can allow the amount of fuel supply to the abatement device to remain constant.
[0027] In one embodiment, the adjusting step includes determining whether the concentration of carbon monoxide exceeds a threshold amount and, if so, reducing the supply of oxidant. Thus, if it is determined that the amount of carbon monoxide exceeds the threshold amount of carbon monoxide, the amount of oxidant supplied can be reduced.
[0028] In one embodiment, the adjusting step includes determining whether the concentration of carbon monoxide is below a threshold amount and, if so, increasing the supply of oxidant such that if it is determined that the amount of carbon monoxide is not capable of achieving the threshold amount of carbon monoxide, the amount of oxidant supply to the abatement device can be increased.
[0029] It will be appreciated that the above-described techniques aid in identifying acceptable target amounts of carbon monoxide produced that would be experienced when treating an effluent stream having excess TEOS.
[0030] According to a second aspect, there is provided an apparatus for adjusting operating conditions in an abatement apparatus configured to treat an effluent stream from a processing tool, the apparatus including a sensor configured to determine a concentration of carbon monoxide produced by the abatement apparatus when treating the effluent stream, and a controller operable to adjust operating parameters of the abatement apparatus in response to the concentration of carbon monoxide.
[0031] In one embodiment, the sensor is configured to measure the concentration of carbon monoxide present in the abatement device exhaust.
[0032] In one embodiment, the sensor is an infrared spectrometer.
[0033] In one embodiment, the operating parameters include a fuel / oxidizer ratio.
[0034] In one embodiment, the controller is operable to vary the fuel / oxidizer ratio to reduce the concentration of carbon monoxide.
[0035] In one embodiment, the controller is operable to determine whether changing the fuel / oxidizer ratio reduces the concentration of carbon monoxide, and if so, to retain the change.
[0036] In one embodiment, the controller is operable to determine whether altering the fuel / oxidizer ratio increases the concentration of carbon monoxide, and if so, to reverse the alteration.
[0037] In one embodiment, the controller is operable to vary the supply of oxidant.
[0038] In one embodiment, the controller is operable to increase the supply of oxidant, determine whether the concentration of carbon monoxide increases, and if so, reduce the supply of oxidant.
[0039] In one embodiment, the controller is operable to reduce the supply of oxidant, determine whether the concentration of carbon monoxide increases, and if so, increase the supply of oxidant.
[0040] In one embodiment, the controller is operable to determine whether changing the fuel / oxidizer ratio reduces the concentration of carbon monoxide toward a threshold amount, and if so, to retain the change.
[0041] In one embodiment, the controller is operable to determine whether altering the fuel / oxidizer ratio reduces the concentration of carbon monoxide below a threshold amount, and if so, to reverse the alteration.
[0042] In one embodiment, the controller is operable to vary the delivery of fuel.
[0043] In one embodiment, the controller is operable to determine whether the concentration of carbon monoxide exceeds a threshold amount, and if so, reduce the delivery of fuel.
[0044] In one embodiment, the controller is operable to determine whether the concentration of carbon monoxide is below a threshold amount and, if so, to increase the supply of fuel.
[0045] In one embodiment, the controller is operable to vary the supply of oxidant.
[0046] In one embodiment, the controller is operable to determine whether the concentration of carbon monoxide exceeds a threshold amount, and if so, reduce the supply of oxidant.
[0047] In one embodiment, the controller is operable to determine whether the concentration of carbon monoxide is below a threshold amount, and if so, to increase the supply of oxidant.
[0048] Further particular and preferred aspects are set out in the accompanying independent and dependent claims. Features of the dependent claims may be combined with features of the independent claims where appropriate and in combinations other than those explicitly set out in the claims.
[0049] It will be appreciated that where a device feature is described as operable to provide a function, this includes device features that provide that function or are adapted or configured to provide that function.
[0050] Embodiments of the present invention will now be described with reference to the accompanying drawings. [Brief description of the drawings]
[0051] [Figure 1] 1 illustrates an internal ignition burn mitigation device according to one embodiment. [Diagram 2] 13 is a graph showing exhaust CO, H (multiplied by 10 to fit the same scale as O), and O content for H flow in 200 slm of N with 500 slm of air through the coaxial air inlets and 40 slm of air through each central lancet addition port. [Diagram 3]1 is a graph showing exhaust CO for a mixture of NH3 and H2 with different amounts of air through the coaxial air inlet and central lancet addition port. [Figure 4] 13 is a graph showing exhaust CO, H (multiplied by 10 to match the same scale as O), and O content for H flow in 200 slm N when air addition through the coaxial air inlet is controlled to minimize CO in the exhaust. [Diagram 5] 1 is a graph showing the airflow required to minimize CO in the exhaust under different operating conditions. [Figure 6] 1 is a schematic flow diagram of optimized air flow control for mitigating H2 / NH3 mixtures by monitoring CO emissions. [Figure 7] 13 is a graph showing CO vs. N2O in the exhaust at the outlet stream inlet (diluted with 200 slm N2) with different amounts of CH4 added through the central lancet addition port. [Figure 8] 7 is a graph showing the percentage conversion of N2O converted to NOx (NO+NO2) for the conditions shown in FIG. 6, where the dashed line shows the region where CO in the exhaust is 200 ppm. [Figure 9] 7 is a graph showing the destruction rate efficiency (DRE) of N2O for the conditions shown in FIG. 6, where the dashed line indicates the region where CO in the exhaust is 200 ppm. [Figure 10] 1 is a graph showing the amount of CH4 required to achieve 200 ppm of CO in the exhaust and the corresponding DRE of N2O versus the amount of N2O supplied. [Figure 11] 1 is a schematic flow diagram for optimized fuel injection control for N2O abatement by monitoring CO emissions. [Figure 12] 1 is a graph showing methane and nitric oxide emissions as a function of concentric methane flow and oxygen injection with 300 slm nitrogen loading on the nozzle. [Figure 13] 1 is a graph showing minimum CH4 injection flow versus nitrogen loading. [Figure 14]1 is a graph showing carbon monoxide and carbon dioxide concentrations in the exhaust as a function of TEOS flow for 600 slm N2, 34 slm CH4, and 80-120 slm O2. [Figure 15] 13 is a graph showing the limiting oxygen injection required to produce 100 ppm CO in the exhaust from TEOS at 200 and 300 slm of N2 to the nozzle. [Figure 16] 1 is a schematic flow diagram for optimized fuel injection control for TEOS mitigation by monitoring CO emissions. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0052] Before describing the embodiments in more detail, an overview will first be given. The embodiments provide a technique in which the operating conditions in the abatement device are controlled by measuring the amount of carbon monoxide generated by the abatement device during the treatment of the effluent stream to achieve improved treatment of the gas present in the effluent stream from the processing tool without causing the generation of harmful amounts of undesirable by-products. This can improve the performance of the abatement device without requiring prior knowledge of the compounds present in the effluent stream. In particular, the performance of the abatement device performing the controlled combustion of combustible gases such as hydrogen and hydrogen / ammonia mixtures or the destruction of oxidizing gases such as nitrous oxide or TEOS is monitored using a gas sensor specific to the carbon monoxide concentration in the exhaust of the device. The concentration response of carbon monoxide to the addition of supplemental oxidizers (such as air or oxygen) or fuels (such as hydrogen, methane or propane) is used to derive optimal conditions for the removal of the gas being treated while minimizing undesirable by-products (such as nitric oxide and nitrogen dioxide). The method does not require a priori knowledge of the amount of the target gas to be destroyed, but instead relies on adjusting the operating parameters of the abatement device.
[0053] Existing combustion abatement devices are known for the destruction of various gases used in the manufacture of semiconductor devices. The abatement of combustible gases such as hydrogen and hydrogen / ammonia mixtures requires the supply of an oxygen source such as air to produce complete combustion. Similarly, oxidizer gases such as nitrous oxide require the supply of a fuel such as methane to reduce the nitrous oxide to nitrogen (in this example). In the case of nitrous oxide, incorrect addition of fuel gas can result in the undesired production of nitric oxide and nitrogen dioxide (collectively known as NOx). The acceptable level of unabated target gas in the exhaust can be limited to an absolute concentration in the exhaust (i.e., below the flammability limit), an emission rate (mass per unit time), or a relative destruction rate efficiency (DRE). Similarly, by-product emissions may be required to be below a certain level. Meeting or exceeding these limitations while using minimal resources is the goal of the abatement device.
[0054] In some cases, it is possible to communicate by digital or analog means to the abatement device the concentration of the gas to be abated. In this way, the abatement operation can be optimized in terms of resources used. In other situations, this may not be possible due to cost, on-site infrastructure, or other commercial reasons. Embodiments call for monitoring performance and adjusting operating parameters individually.
[0055] Mitigation Device 1 illustrates an internally fired abatement apparatus 10 according to one embodiment. The abatement apparatus 10 includes an internally fired perforated burner 20 that is supplied with a hydrocarbon fuel (typically methane or propane) / air mixture to provide a hot zone and ignition source for chemically destroying target compounds in an effluent stream that is introduced into a combustion chamber 30 at the core of the burner by inlet piping 40 terminating in a nozzle 50. Generally, fuel is provided through a fuel inlet 100 into a plenum 90 for supply to the perforated burner 20 under the control of a controller 120.
[0056] Nozzle 50 is provided with auxiliary ports positioned as a central lancet 60 or coaxial annulus 70 (fed from a shared plenum 80) that are used to introduce fuel gas or oxidizer, supplied under the control of controller 120, to facilitate destruction of those compounds to be treated. Generally, a fuel / oxidizer mixture is fed into plenum 90 through central lancet 60 and fuel / oxidizer inlet 110 for feeding into coaxial annulus 70 under the control of controller 120.
[0057] An infrared spectrometer 130 is provided to measure the CO concentration in the exhaust from the combustion chamber 30 .
[0058] Downstream of the combustion chamber 30 is a packed tower (not shown) for absorbing water soluble gases along with a water weir and quench section (not shown) for cooling the exhaust.
[0059] Mitigation – Hydrogen or Hydrogen / Ammonia Mixture Abatement of combustible gases such as hydrogen or hydrogen / ammonia mixtures can be facilitated by adding air around the nozzle 50 to provide sufficient oxygen to completely combust these materials. When there is insufficient air, the combustion chamber 30 becomes oxygen starved and the exhaust of the abatement device 10 contains products of incomplete combustion of the fuel. When there is an excess of air, the perforated burner 20 cools to a point where the combustion of the fuel is quenched and again products of incomplete combustion of the fuel are found in the exhaust. In extreme cases of under- or over-supply of air, unburned hydrogen is detected in the exhaust. For ammonia, the unburned gas is mostly dissolved in a water-washed packed tower downstream of the burner assembly, but some escapes into the exhaust.
[0060] An example of this is shown in FIG. 2, where 500 slm of air is provided around the nozzles 70 while the flow rate of hydrogen (diluted with 200 slm of nitrogen) is increased to 400 slm. A lancet 60 located at the center of each nozzle 70 provides an additional 40 slm of compressed dry air. The concentrations of carbon monoxide (CO), hydrogen, and oxygen in the exhaust stream are shown. The concentration of oxygen decreases monotonically with the addition of hydrogen, whereas the concentration of CO shows a U-shaped curve, with the minimum level of CO corresponding to the region of the air flow where hydrogen is completely destroyed. The concentrations of hydrogen and oxygen are measured with electrochemical cells, whereas the concentration of CO is measured with infrared spectroscopy using an infrared spectrometer 130. Electrochemical cells are prone to contamination, cross-sensitivity, and degradation, whereas infrared spectroscopy allows for increased separation sensitivity and protection against contamination or degradation. CO can be measured with a pelistor sensor, but this sensor is cross-sensitive to the presence of other combustible gases and is unreliable in oxygen-restricted environments. Infrared sensors also have a fast response time and are less susceptible to saturation problems.
[0061] The same trend is shown in Figure 3, where the CO concentration in the exhaust is plotted against the amount of air added around the inlet nozzle for different mixtures of hydrogen and increased ammonia in 200 slm nitrogen. Again, the CO emissions show a U-shaped profile, with a minimum coinciding with optimal abatement performance.
[0062] Figure 4 shows the release of increased hydrogen, where a feedback loop between the infrared spectrometer 130 and an air flow controller, which under the control of the controller 120 controls the amount of air supplied to the combustion chamber 30, is used to control the amount of air added to minimize the CO concentration in the exhaust. Note that below 200 slm hydrogen, the amount of air was not controlled, with a baseline level of 400 slm. Minimizing CO has the secondary effect of maintaining a constant level of oxygen in the exhaust. For the reasons mentioned above, CO is much easier to monitor than O2.
[0063] Figure 5 shows the air flow added for different amounts of hydrogen or hydrogen and ammonia (treating 1 molecule of ammonia as 1.5 molecules of hydrogen to account for the oxygen required for combustion) for Figures 3-5. Above the lower air limit of 400 slm the dots lie on a similar trend for the air added to minimize CO emissions, revealing this as a viable feedback control measure for optimal destruction of these gas mixtures.
[0064] Mitigation Optimization – Hydrogen or Hydrogen / Ammonia Mixture FIG. 6 is a schematic flow diagram outlining the major steps performed by the controller 120 when optimizing the operating conditions within the combustion chamber 30 for treating an effluent stream containing hydrogen or a hydrogen / ammonia mixture.
[0065] In step S1, the effluent stream is treated in a combustion chamber 30, with the controller 30 providing default or predetermined amounts of fuel and oxidant (air in this example). Processing proceeds to step S2.
[0066] In step S2, the amount of CO in the exhaust is determined by infrared spectrometer 130. The process proceeds to step S3.
[0067] In step S3, the controller 130 increases the oxidant to fuel / H2 / NH3 ratio, in this example by increasing the amount of air supplied to the combustion chamber 30. The process proceeds to step S4.
[0068] In step S4, the controller 130 determines whether the amount of CO in the exhaust has increased as measured by the infrared spectrometer 130. If the amount of CO has decreased, the process returns to step S3. If the amount of CO has increased, the process proceeds to step S5.
[0069] In step S5, the controller 130 reduces the oxidant to fuel / H2 / NH3 ratio, in this example by reducing the amount of air supplied to the combustion chamber 30. The process proceeds to step S6.
[0070] In step S6, the controller 130 determines whether the amount of CO in the exhaust gas has decreased as measured by the infrared spectrometer 130. If the amount of CO has decreased, the process returns to step S3. If the amount of CO has increased, the process proceeds to step S5.
[0071] As discussed above and as can be seen from Figure 3, this approach allows the operating conditions of the combustion chamber 30 to be adjusted to follow the curve shown to minimize the amount of CO present in the exhaust, thereby optimizing the abatement of the H2 / NH3 mixture and reducing the amount of H2 present in the exhaust. It will be appreciated that in other embodiments, adaptive algorithms can be used.
[0072] Mitigation – Nitrous Oxide Another embodiment of this approach is shown in FIG. 7 for the destruction of nitrous oxide (NO) diluted with 200 slm of nitrogen. The NO can be reduced to nitrogen by reaction with a fuel such as methane (CH) that is added to the inlet flow through a lancet 60 in the center of the nozzle 50. Undesirable side reactions can also produce nitrogen oxides (nitric oxide (NO) and nitrogen dioxide (NO) are grouped together under the collective term "NOx") as by-products. The graph shows the reduction in CO when different amounts of CH are added to the lancet 60. Excess CH relative to the NO again results in incomplete oxidation and the production of CO. A dashed line is drawn across the graph with a desired level of 200 ppm for CO in the exhaust. By employing an infrared spectrometer 120 in the exhaust where a feedback loop is used to control a methane flow controller (not shown), it is possible to select the level of CO that should be present in the exhaust to optimize the formation of NOx and maximize the destruction of NO.
[0073] The yield of NOx due to the destruction of N2O when different amounts of CH4 are added is shown in Figure 8. The yield of this unwanted by-product varies with the N2O flow and the injection flow, and the dashed line on the graph shows the NOx yield when the CO concentration in the exhaust is 200 ppm.
[0074] FIG. 9 shows the destruction rate efficiency (DRE) for N2O when different amounts of fuel are added. The dashed line shows the resulting DRE when enough CH4 is added to achieve a CO concentration of 200 ppm in the exhaust. In this way, a favorable compromise between effective destruction of N2O and production of NOx can be found. Other target concentrations of CO in the exhaust can be selected in response to the relative importance of these parameters (e.g., low NOx vs. low CO).
[0075] 10 shows the change in the amount of CH4 addition required to achieve 200 ppm CO concentration in the exhaust as well as the change in the DRE of NO. As with the previous embodiment, this demonstrates the feasibility of using a CO sensor for feedback control of reagent gas addition to optimize abatement.
[0076] Mitigation Optimization - Nitrous Oxide FIG. 11 is a schematic flow diagram outlining the major steps performed by the controller 120 in optimizing the operating conditions within the combustion chamber 30 for treating an effluent stream containing a nitrous oxide mixture.
[0077] In step S10, the effluent stream is treated in a combustion chamber 30, with the controller 30 providing default or predetermined amounts of fuel and oxidant (air in this example). The process proceeds to step S11.
[0078] In step S11, the amount of CO in the exhaust is determined by the infrared spectrometer 130. The process proceeds to step S12.
[0079] In step S12, the controller 120 determines whether the amount of CO in the exhaust as measured by the infrared spectrometer 130 exceeds a threshold. In this example, the threshold is 200 ppm, although it will be appreciated that other thresholds may be used. If the amount of CO in the exhaust exceeds the threshold, the process proceeds to step S13. If the amount of CO in the exhaust does not exceed the threshold, the process proceeds to step S14.
[0080] In step S13, the controller 120 reduces the ratio of fuel to oxidizer, in this example, N2O. In this example, this is done by reducing the amount of fuel provided to the combustion chamber 30. Processing returns to step S12.
[0081] In step S14, the controller 120 increases the ratio of fuel to oxidizer, in this example, N2O. In this example, this is done by increasing the amount of fuel provided to the combustion chamber 30. Processing returns to step S12.
[0082] As discussed above and as can be seen from Figure 7, this approach allows the operating conditions of the combustion chamber 30 to be adjusted to follow the curve shown in order to reduce the amount of CO present in the exhaust below a threshold amount, thereby optimizing NO mitigation. It will be appreciated that in other embodiments, adaptive algorithms can be used.
[0083] Mitigation - TEOS In one embodiment, a method is provided for optimizing tetraethylorthosilicate abatement using exhaust gas sensors. A primary indicator of incomplete TEOS abatement is the formation of carbon monoxide. The concentration of CO in the exhaust is monitored using a suitable sensor (e.g., by infrared spectroscopy using infrared spectrometer 130) and the added oxygen is adjusted accordingly to achieve the desired amount.
[0084] Many semiconductor manufacturers use pressure swing adsorption to extract oxygen from air, and the resulting purity is typically 90-95%. Ideally, this would be monitored and used to adjust the injection flow in response. This is difficult to do in an accurate and timely manner, so the strategy of adjusting the injection flow to achieve a limiting value of CO in the exhaust is suited to oxygen of unknown purity.
[0085] Tetraethyl orthosilicate, formally tetraethoxysilane or abbreviated TEOS, is a chemical compound with the chemical formula Si(OC2H5)4. TEOS is a colorless, volatile liquid that decomposes in water. TEOS is the ethyl ester of orthosilicic acid, Si(OH)4. In semiconductor manufacturing, it is the most common silicon alkoxide, widely used to deposit silicon dioxide coatings on wafers.
[0086] TEOS is less toxic than its methyl ester analogue, Si(OCH3)4, but its release into the environment is undesirable. TEOS is readily hydrolyzed with water to hydrated silica and ethanol, but wet scrubbing of TEOS is not recommended due to its tendency to produce foam.
[0087] TEOS is flammable according to the following formula: Si(C2H5O)4+12O2=SiO2+8CO2+10H2O
[0088] In practice, TEOS is difficult to ignite, requires an ignition source such as a flame, and is typically mixed with oxygen before combustion. Lack of oxygen leads to incomplete combustion and foam formation in the combustor drain tank. Excess oxygen is a waste of resources. Since the purity of the oxygen supplied to the abatement system is often unknown, it is not sufficient to foresee the incoming TEOS flow and set the appropriate oxygen flow. The embodiments provide a method to estimate the optimal oxygen addition rate.
[0089] Figure 12 plots methane (CH4) and NOx emissions as a function of the concentric methane fuel surrounding the nozzle 50. TEOS is not used at this stage, and the point at which NOx appears in the exhaust is used to establish the minimum amount of methane surrounding the nozzle 50 that is sufficient to establish a stable flame under these conditions. This is a function of nozzle nitrogen fill, as shown in Figure 13. A linear relationship with a negative intercept is suggested, but the fuel required is likely to plateau at low levels. By this means it is possible to establish a concentric methane flow that is suitable for the operating parameters.
[0090] After establishing the methane required to stabilize the flame near the nozzle 50, the amount of oxygen required to mitigate TEOS can be considered. Using the data presented in Figure 14 (for 600 slm N2 and increasing TEOS), limit functions for abatement at three different amounts of O2 can be established using any (target threshold) level of CO in the exhaust of 100 ppm. These limits for different nozzle nitrogen fills are shown in Figure 15.
[0091] Although there are only three points per flow rate, both the 300 slm and 600 slm results appear to fall on a straight line with slopes of 1.19 and 1.11 liters of O2 per gram of TEOS, respectively. The stoichiometric equation for the complete combustion of TEOS is given above. Thus, 1 mole of TEOS requires 12 moles of O2. Since the molecular weight of TEOS is 208.33 g / mol, 1 gram of TEOS requires 12 x 22.4 / 208.33 liters of oxygen. This is 1.29 liters per gram of TEOS, close to the slope of the line in Figure 15.
[0092] It is therefore possible to define a set of parameters for the mitigation of TEOS in nitrogen: CH4 (concentric at slm) = 0.064 nozzle N2-5.2 at slm O2(lancet in slm)=1.15TEOS in g / min+(nozzle N2 in slm) / 10-15
[0093] In practice, while the nitrogen flow is known and stable, the TEOS flow is often unknown, and furthermore the oxygen available for use in the abatement system is less than 100% pure. To overcome this, a carbon monoxide sensor (such as infrared spectrometer 130) is used to derive the appropriate level of oxygen flow by simply adjusting its set point until the desired threshold amount of CO in the exhaust is reached.
[0094] Mitigation Optimization - TEOS FIG. 16 is a schematic flow diagram outlining the major steps performed by the controller 120 in optimizing the operating conditions within the combustion chamber 30 for treating an effluent stream containing a TEOS mixture.
[0095] In step S20, the effluent stream is treated in a combustion chamber 30, with the controller 30 providing default or predetermined amounts of fuel and oxidant (oxygen in this example). The process proceeds to step S21.
[0096] In step S21, the amount of CO in the exhaust is determined by the infrared spectrometer 130. The process proceeds to step S22.
[0097] In step S22, the controller 120 determines whether the amount of CO in the exhaust as measured by the infrared spectrometer 130 exceeds a threshold. In this example, the threshold is 100 ppm, although it will be appreciated that other thresholds may be used. If the amount of CO in the exhaust exceeds the threshold, the process proceeds to step S23. If the amount of CO in the exhaust does not exceed the threshold, the process proceeds to step S24.
[0098] In step S23, the controller 120 increases the oxidizer to fuel ratio, in this example by increasing the amount of oxygen provided to the combustion chamber 30. Processing returns to step S22.
[0099] In step S24, the controller 130 reduces the oxidant to fuel ratio, in this example by reducing the amount of oxygen provided to the combustion chamber 30. Processing returns to step S22.
[0100] As discussed above and as can be seen from Figure 14, this approach allows the operating conditions of the combustion chamber 30 to be adjusted to follow the curve shown in order to reduce the amount of CO present in the exhaust below a threshold amount, thereby optimizing TEOS mitigation. It will be appreciated that in other embodiments, adaptive algorithms can be used.
[0101] Thus, embodiments use a CO specific sensor for additional oxidant or additional fuel control, noting that CO is a by-product of incomplete combustion. In the case of NO abatement, embodiments use CO levels to find a trade-off between DRE and NOx yield.
[0102] Although exemplary embodiments of the present invention have been disclosed in detail herein with reference to the accompanying drawings, it is understood that the present invention is not limited to the exact embodiments, and various changes and modifications can be made therein by those skilled in the art without departing from the scope of the present invention as defined by the claims and their equivalents.
[0103] Reference sign Mitigation Device 10 Perforated burner 20 Combustion chamber 30 Inlet pipe 40 Nozzle 50 Central Lancet 60 Coaxial Annulus 70 Plenum 80, 90 fuel inlet 100 Fuel / Oxidizer Inlet 110 Controller 120 Infrared Spectrometer 130
Claims
1. A method for optimizing operating conditions in a perforated burner abatement apparatus configured to treat an effluent stream containing hydrogen from a semiconductor processing tool and supplied with a hydrocarbon fuel / air mixture, comprising: providing an effluent stream comprising hydrogen through a nozzle to a perforated burner; determining a concentration of carbon monoxide produced by the perforated burner abatement device and present in the perforated burner abatement device exhaust when processing the effluent stream; and adjusting a supply of oxidizer to the nozzle of the perforated burner abatement device in response to the concentration of carbon monoxide; until the concentration of carbon monoxide is optimized. i) determining whether the carbon monoxide concentration increases with the supply of oxidant and, if so, reducing the supply of oxidant; or ii) determining whether the carbon monoxide concentration increases with the supply of oxidant and, if so, increasing the supply of oxidant. The method according to claim 1, further comprising:
2. 2. The method of claim 1, wherein the determining step includes measuring the concentration of carbon monoxide using an infrared spectrometer.
Citation Information
Patent Citations
Method of removing toxic substance from gas stream
JP1998038245A
Exhaust gas disposal method using alternating combustion type hot air burner
JP2003021324A
Waste gas cleaning treatment device
JP2007162959A
Method of firebox temperature control for achieving carbon monoxide emission compliance in industrial furnaces with minimal energy consumption
US20020033125A1
Process for controlling the addition of an auxiliary fuel
US20110039216A1