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US20190094715A1 - Vacuum system for immersion photolithography - Google Patents

Vacuum system for immersion photolithography Download PDF

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Publication number
US20190094715A1
US20190094715A1 US16/202,170 US201816202170A US2019094715A1 US 20190094715 A1 US20190094715 A1 US 20190094715A1 US 201816202170 A US201816202170 A US 201816202170A US 2019094715 A1 US2019094715 A1 US 2019094715A1
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separator
liquid
opening
gas
tank
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Andrew John Harpham
Paul John Shechter
Paul Alan Stockman
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ASML Netherlands BV
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ASML Netherlands BV
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Assigned to THE BOC GROUP PLC reassignment THE BOC GROUP PLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: SHECHTER, PAUL JOHN, STOCKMAN, PAUL ALAN, HARPHAM, ANDREW JOHN
Assigned to ASML NETHERLANDS B.V. reassignment ASML NETHERLANDS B.V. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: EDWARDS LIMITED
Assigned to EDWARDS LIMITED reassignment EDWARDS LIMITED ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: THE BOC GROUP PLC
Publication of US20190094715A1 publication Critical patent/US20190094715A1/en
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    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03FPHOTOMECHANICAL PRODUCTION OF TEXTURED OR PATTERNED SURFACES, e.g. FOR PRINTING, FOR PROCESSING OF SEMICONDUCTOR DEVICES; MATERIALS THEREFOR; ORIGINALS THEREFOR; APPARATUS SPECIALLY ADAPTED THEREFOR
    • G03F7/00Photomechanical, e.g. photolithographic, production of textured or patterned surfaces, e.g. printing surfaces; Materials therefor, e.g. comprising photoresists; Apparatus specially adapted therefor
    • G03F7/20Exposure; Apparatus therefor
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03FPHOTOMECHANICAL PRODUCTION OF TEXTURED OR PATTERNED SURFACES, e.g. FOR PRINTING, FOR PROCESSING OF SEMICONDUCTOR DEVICES; MATERIALS THEREFOR; ORIGINALS THEREFOR; APPARATUS SPECIALLY ADAPTED THEREFOR
    • G03F7/00Photomechanical, e.g. photolithographic, production of textured or patterned surfaces, e.g. printing surfaces; Materials therefor, e.g. comprising photoresists; Apparatus specially adapted therefor
    • G03F7/70Microphotolithographic exposure; Apparatus therefor
    • G03F7/708Construction of apparatus, e.g. environment aspects, hygiene aspects or materials
    • G03F7/70858Environment aspects, e.g. pressure of beam-path gas, temperature
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D57/00Separation, other than separation of solids, not fully covered by a single other group or subclass, e.g. B03C
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03FPHOTOMECHANICAL PRODUCTION OF TEXTURED OR PATTERNED SURFACES, e.g. FOR PRINTING, FOR PROCESSING OF SEMICONDUCTOR DEVICES; MATERIALS THEREFOR; ORIGINALS THEREFOR; APPARATUS SPECIALLY ADAPTED THEREFOR
    • G03F7/00Photomechanical, e.g. photolithographic, production of textured or patterned surfaces, e.g. printing surfaces; Materials therefor, e.g. comprising photoresists; Apparatus specially adapted therefor
    • G03F7/70Microphotolithographic exposure; Apparatus therefor
    • G03F7/70216Mask projection systems
    • G03F7/70341Details of immersion lithography aspects, e.g. exposure media or control of immersion liquid supply
    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03FPHOTOMECHANICAL PRODUCTION OF TEXTURED OR PATTERNED SURFACES, e.g. FOR PRINTING, FOR PROCESSING OF SEMICONDUCTOR DEVICES; MATERIALS THEREFOR; ORIGINALS THEREFOR; APPARATUS SPECIALLY ADAPTED THEREFOR
    • G03F7/00Photomechanical, e.g. photolithographic, production of textured or patterned surfaces, e.g. printing surfaces; Materials therefor, e.g. comprising photoresists; Apparatus specially adapted therefor
    • G03F7/70Microphotolithographic exposure; Apparatus therefor
    • G03F7/708Construction of apparatus, e.g. environment aspects, hygiene aspects or materials
    • G03F7/70808Construction details, e.g. housing, load-lock, seals or windows for passing light in or out of apparatus
    • G03F7/70841Constructional issues related to vacuum environment, e.g. load-lock chamber

Definitions

  • This invention relates to a vacuum system for extracting a multi-phase fluid, and more particularly for extracting a multi-phase fluid from an Immersion photolithography exposure tool.
  • Photolithography is an important process step in semiconductor device fabrication.
  • a circuit design is transferred to a wafer through a pattern imaged onto a photoresist layer deposited on the wafer surface.
  • the wafer then undergoes various etch and deposition processes before a new design is transferred to the wafer surface. This cyclical process continues, building up multiple layers of the semiconductor device.
  • the minimum feature that may be printed using photolithography is determined by the resolution limit W, which is defined by the Rayleigh equation as:
  • k1 is the resolution factor
  • is the wavelength of the exposing radiation
  • NA is the numerical aperture
  • NA NA ⁇ ⁇ ⁇ n ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ n ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ n ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇
  • Immersion photolithography is a known technique for improving optical resolution by increasing the value of NA.
  • a liquid 10 having a refractive index n>1 is placed between the lower surface of the objective lens 12 of a projection device 14 and the upper surface of a wafer 16 located on a moveable wafer stage 18 .
  • the liquid placed between lens 12 and wafer 16 should, ideally, have a low optical absorption at 193 nm, be compatible with the lens material and the photoresist deposited on the wafer surface, and have good uniformity.
  • the lens and wafer could be immersed in a bath of water supported by the wafer stage, with a pump used to recirculate the water within the bath.
  • this technique is generally considered undesirable.
  • An alternative technique is to use a nozzle or showerhead device 20 connected to a water source and a vacuum system, shown generally at 22 , to produce a localized stream of ultra-pure, degassed water between the lens 12 and the wafer 16 .
  • a vacuum system shown generally at 22
  • the vacuum system 22 extracts from the tool a multi-phase mixture of water and CDA.
  • the pressure control system can maintain a substantially constant pressure in the separating means by regulating the amounts of liquid and gas within the separating means.
  • the pressure control system preferably comprises means for supplying gas to the separating means from a source thereof, and control means for controlling the flow of gas to the separating means.
  • control means for controlling the flow of gas to the separating means.
  • gas can be introduced into the separating means from the external source to compensate for such variations.
  • the pressure control system comprises a variable flow control device, such as a butterfly or other control valve, through which gas is supplied to the separating means, with the control means being configured to vary the conductance of the valve to control the pressure within the separating means.
  • a controller may be configured to receive a signal indicative of the pressure within the separating means, and to control the conductance of the valve in dependence on the received signal.
  • This signal may be received from a pressure sensor, capacitance manometer or other form of sensor of sufficient sensitivity to achieve the required level of pressure control.
  • the controller is preferably configured to control the flow of gas from the separating means in dependence on the received signal.
  • another variable flow control device may be provided, through which gas is extracted from the tank by the first pumping unit, with the controller being configured to control the conductance of this variable flow control device.
  • One or more flexible tubes are preferably used to convey fluid (single and/or multi-phase) between the components of the system.
  • a flexible tube may be used to convey the multi-phase fluid to the separating means.
  • Further flexible tubes may also be used to convey the single phase streams from the separating means to respective pumping units. This can minimize the transmission of vibrations generated during use of the system back to the fluid within the tool.
  • a method for extracting a stream of multi-phase fluid from a photo-lithography tool comprising the steps of: connecting a pumping arrangement to the tool via an extraction tank; operating the pumping arrangement to draw the fluid from the tool; separating the fluid drawn from the tool into gas and liquid phases within the extraction tank, the pumping arrangement extracting separately gas and liquid from the extraction tank; and controlling the pressure within the extraction tank by regulating the amounts of gas and liquid therewithin.
  • FIG. 2 schematically illustrates the present invention vacuum system for extracting a multi-phase fluid from an immersion photolithography tool.
  • a system 30 for extracting a multi-phase fluid from an immersion photolithography tool comprises a separating means depicted for purposes of illustration as an extraction tank 32 for receiving the multi-stream fluid drawn from the tool by a pumping arrangement located downstream from the tank 32 .
  • the tank 32 is connected to the tool by flexible tubing 34 so as to minimize the amount of mechanical coupling between the system 30 and the tool, and thereby minimize the transmission of vibrations generated during use of the system 30 back to the tool.
  • the pumping arrangement comprises a first pumping unit 36 for extracting gas from the tank 32 , and a second pumping unit 38 for extracting liquid from the tank 32 .
  • the first pumping unit 36 may comprise any suitable pump for extracting the gas from the tank 32 , and is preferably chosen for compatibility with the gas extracted from the tank 32 , which is likely to be saturated with liquid vapor, for minimum transmission of pressure fluctuations back to the gas contained in the tank 32 , and for relatively long maintenance periods.
  • the first pumping unit 36 may conveniently comprise an air-powered ejector pump or a water-based liquid ring pump for extracting CDA from the tank 32 .
  • the first pumping unit 36 is connected to the tank using flexible tubing 40 .
  • a separator vessel 42 may be connected to the exhaust of the first pumping unit 36 , the vessel 42 containing any suitable material and/or structure for affecting the separation of water vapor from the CDA.
  • the water extracted from the CDA is exhaust to a drain, and the CDA is vented to the atmosphere.
  • the second pumping unit 38 may comprise any suitable pump for extracting the liquid from the tank 32 , and is preferably chosen for compatibility with the liquid extracted from the tank 32 and for relatively long maintenance periods.
  • the second pumping unit 38 may conveniently comprise a water-powered ejector pump or a diaphragm pump for extracting water from the tank 32 .
  • the second pumping unit 38 is connected to the tank using flexible tubing 44 .
  • the internal diameter of the flexible tubing 44 may be chosen to restrict the flow rate of liquid from the tank 32 to the second pumping unit 38 .
  • a fixed or variable flow restrictor may be located between the tank 32 and the second pumping unit 38 .
  • the amount of liquid contained in the tank 32 is maintained at a substantially constant level by a controller 46 , thereby maintaining a substantially constant volume of gas in the tank 32 .
  • the controller 46 is connected to a sensor 48 for detecting the amount of liquid within the tank 32 .
  • the sensor 48 may comprise, for example, a level meter, float meter or other form of suitable sensor.
  • the sensor 48 outputs a signal to the controller 46 indicative of the level of the liquid within the tank 32 .
  • the controller 46 outputs to a variable flow control device 50 located between the tank 32 and a pressurized external liquid source 52 connected to the tank 32 a signal which causes the device 50 to vary the flow of liquid, in this embodiment water, to the tank 32 .
  • the device 50 may be a butterfly or other control valve having a conductance that can be varied in dependence on, preferably in proportion to, the signal received from the controller 46 .
  • the controller 46 can compensate for any variation in the flow rate of fluid to the tank 32 from the tool and/or any variation in the rate of extraction of liquid from the tank 32 by the second pumping unit 38 , and thus maintain the liquid in the tank 32 at a substantially constant level.
  • the controller 46 may be arranged to process the signal received from the sensor 48 to compensate for any ripples generated in the surface of the liquid during use.
  • any variations in the amount of gas contained in the multi-phase fluid received from the tank, and/or any in the rate of extraction of gas from the tank 32 by the first pumping unit 36 , and any temperature fluctuations within the tank 32 could vary the pressure of the gas within the tank 32 , and impart pressure and flow fluctuations to the fluid in the tool.
  • the pressure control system is therefore configured to maintain a substantially constant pressure within the tank 32 by also regulating the amount of gas within the tank 32 .
  • the pressure control system comprises a controller 54 connected to a sensor 56 for detecting the gas pressure with the tank 32 .
  • the sensor 56 may comprise, for example, a pressure sensor, a capacitance manometer or other form of sensor of sufficient sensitivity to achieve the required level of pressure control.
  • the sensor 56 outputs a signal to the controller 54 indicative of the gas pressure within the tank 32 .
  • the controller 54 outputs to a variable flow control device 58 located between the tank 32 and a pressurized external gas source 60 connected to the tank 32 a signal which causes the device 58 to vary the flow of gas, in this embodiment CDA, to the tank 32 .
  • a further variable flow control device 62 may be located between the tank 32 and the first pumping unit 36 and configured to receive a signal from the controller 54 to vary the flow of gas from the tank 32 .
  • the devices 58 , 62 may also be butterfly or other control valves having a conductance that can be varied in dependence on, preferably in proportion to, the signal received from the controller. 54 .
  • the controller 54 can maintain a substantially constant gas pressure within the tank 32 .
  • System 30 provides the capability of extracting a multi-phase fluid from the immersion lithography tool while minimizing any pressure fluctuations imparted thereby to the fluid within the tool.
  • a system for extracting a stream of multi-phase fluid from a photo-lithography tool comprising: a pumping arrangement for drawing the fluid from the tool; separating means located upstream from the pumping arrangement for separating the fluid drawn from the tool into gas and liquid phases, the pumping arrangement further comprising a first pumping unit for extracting gas from the separating means and a second pumping unit for extracting liquid from the separating means; and a pressure control system for controlling the pressure within the separating means by regulating the amounts of gas and liquid therein.
  • the pressure control system comprises gas supply means for supplying gas to the separating means from a source thereof, and control means for controlling the flow of gas to the separating means.
  • the gas supply means comprises a variable flow control device for gas supply to the separating means, the control means configured to vary the conductance of the variable flow control device to control the pressure within the separating means.
  • the control means comprises a controller configured to receive a signal indicative of the pressure within the separating means and to control the conductance of the variable flow control device.
  • the controller is further configured to control the flow of gas from the separating means in response to the received signal.
  • the pressure control system comprises liquid supply means for supplying liquid to the separating means from a source thereof, and liquid supply control means for controlling the flow of liquid to the separating means.
  • the liquid supply control means is configured to control the amount of liquid within the separating means.
  • the liquid supply means comprises a variable flow control device through which liquid is supplied to the separating means, the liquid supply control means being configured to vary the conductance of the variable flow control device to control the amount of liquid within the separating means.
  • the liquid supply control means comprises a controller configured to receive a signal indicative of the level of liquid within the separating means, and to control the conductance of the variable flow control device in response to the received signal.
  • the separation means comprises an extraction tank.

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Abstract

A vacuum system for extracting a stream of a multi-phase fluid from a photo-lithography tool comprises a pumping arrangement for drawing the fluid from the tool, and an extraction tank located upstream from the pumping arrangement for separating the fluid drawn from the tool into gas and liquid phases. The pumping arrangement comprises a first pump for extracting gas from the tank, and a second pump for extracting liquid from the tank. In order to minimize any pressure fluctuations transmitted from the vacuum system back to the fluid within the tool, a pressure control system maintains a substantially constant pressure in the tank by regulating the amounts of liquid and gas within the tank.

Description

  • The present application is a continuation of co-pending U.S. patent application Ser. No. 15/857,368, filed Dec. 28, 2017, now allowed, which is a continuation of U.S. patent application Ser. No. 15/362,530, filed Nov. 28, 2016, now U.S. Pat. No. 9,857,699, which is a continuation of U.S. patent application Ser. No. 14/469,389, filed Aug. 26, 2014, now U.S. Pat. No. 9,507,270, which is a continuation of U.S. patent application Ser. No. 13/187,166, filed Jul. 20, 2011, now U.S. Pat. No. 8,830,440, which is a continuation of U.S. patent application Ser. No. 12/340,326, filed Dec. 19, 2008, now U.S. Pat. No. 8,164,734, which is a continuation of U.S. patent application Ser. No. 10/869,191, filed on Jun. 16, 2004, now U.S. Pat. No. 7,481,867. The entire content of each of the foregoing applications is herein fully incorporated by reference.
  • FIELD
  • This invention relates to a vacuum system for extracting a multi-phase fluid, and more particularly for extracting a multi-phase fluid from an Immersion photolithography exposure tool.
  • BACKGROUND
  • Photolithography is an important process step in semiconductor device fabrication. In photolithography, a circuit design is transferred to a wafer through a pattern imaged onto a photoresist layer deposited on the wafer surface. The wafer then undergoes various etch and deposition processes before a new design is transferred to the wafer surface. This cyclical process continues, building up multiple layers of the semiconductor device.
  • The minimum feature that may be printed using photolithography is determined by the resolution limit W, which is defined by the Rayleigh equation as:
  • W = k 1 λ N A ( 1 )
  • where k1 is the resolution factor, λ is the wavelength of the exposing radiation and NA is the numerical aperture. In lithographic processes used in the manufacture of semiconductor devices, it is therefore advantageous to use radiation of very short wavelength in order to improve optical resolution so that very small features in the device may be accurately reproduced. Monochromatic visible light of various wavelengths have been used, and more recently radiation in the deep ultra violet (DUV) range has been used, including radiation at 193 nm as generated using an ArF excimer laser.
  • The value of NA is determined by the acceptance angle (α) of the lens and the index of refraction (n) of the medium surrounding the lens, and is given by the equation:

  • NA=n sin α  (2)
  • For clean dry air (CDA), the value of n is 1, and so the physical limit to NA for a lithographic technique using CDA as a medium between the lens and the wafer is 1, with the practical limit being currently around 0.9.
  • Immersion photolithography is a known technique for improving optical resolution by increasing the value of NA. With reference to FIG. 1, in this technique a liquid 10 having a refractive index n>1 is placed between the lower surface of the objective lens 12 of a projection device 14 and the upper surface of a wafer 16 located on a moveable wafer stage 18. The liquid placed between lens 12 and wafer 16 should, ideally, have a low optical absorption at 193 nm, be compatible with the lens material and the photoresist deposited on the wafer surface, and have good uniformity.
  • These criteria are met by ultra pure, degassed water, which has a refractive index n≈1.44. The increased value of n, in comparison to a technique where the medium between lens and wafer is CDA, increases the value of NA, which in turn decreases the resolution limit W, enabling smaller features to be reproduced.
  • Due to outgassing from the photoresist layer and the generation of particulates during photolithography, it is desirable to maintain a steady flow of water between the lens 12 and the wafer 16. For example, as described in US 2004/0075895 the lens and wafer could be immersed in a bath of water supported by the wafer stage, with a pump used to recirculate the water within the bath. However, due to the weight of the water bath acting on the wafer stage, this technique is generally considered undesirable.
  • An alternative technique, as shown in FIG. 1, is to use a nozzle or showerhead device 20 connected to a water source and a vacuum system, shown generally at 22, to produce a localized stream of ultra-pure, degassed water between the lens 12 and the wafer 16. To prevent the ingress of water into other parts of the tool, for example, the mechanism used to move the wafer stage 18, one or more differential air seals 24 are used. As a result, the vacuum system 22 extracts from the tool a multi-phase mixture of water and CDA. However, the extraction of such a multi-phase mixture from the tool using a single vacuum pump, especially in slug or churn regime flows, can generate undesirable pressure and flow fluctuations upstream of the pump, which could be transmitted back to the tool. This could lead to errors in the photolithography process, for example, through variations in the refractive index of the medium located between the lens and the wafer, or through the transmission of mechanical vibrations to the tool.
  • SUMMARY
  • It is an object of the present invention to provide a vacuum system for extracting a stream of a multi-phase fluid from a photolithography tool and which can minimize any pressure fluctuations imparted thereby to fluid within the tool.
  • In a first aspect, the present invention provides a system for extracting a stream of multi-phase fluid from a photo-lithography tool, the system comprising a pumping arrangement for drawing the fluid from the tool, separating means located upstream from the pumping arrangement for separating the fluid drawn from the tool into gas and liquid phases, the pumping arrangement comprising a first pumping unit for extracting gas from the separating means and a second pumping unit for extracting liquid from the separating means, and a pressure control system for controlling the pressure within the separating means by regulating the amounts of gas and liquid therewithin.
  • In order to minimize any pressure fluctuations transmitted from the system back to the fluid within the tool, the pressure control system can maintain a substantially constant pressure in the separating means by regulating the amounts of liquid and gas within the separating means.
  • In order to control the amount of gas within the separating means, the pressure control system preferably comprises means for supplying gas to the separating means from a source thereof, and control means for controlling the flow of gas to the separating means. For example, where there is a variation in the flow of fluid into the separating means, and/or a variation in the flow of gas from the separating means, gas can be introduced into the separating means from the external source to compensate for such variations. In a preferred embodiment, the pressure control system comprises a variable flow control device, such as a butterfly or other control valve, through which gas is supplied to the separating means, with the control means being configured to vary the conductance of the valve to control the pressure within the separating means. For example, a controller may be configured to receive a signal indicative of the pressure within the separating means, and to control the conductance of the valve in dependence on the received signal. This signal may be received from a pressure sensor, capacitance manometer or other form of sensor of sufficient sensitivity to achieve the required level of pressure control.
  • As well as, or as an alternative to, controlling the supply of gas to the separating means, the controller is preferably configured to control the flow of gas from the separating means in dependence on the received signal. For example, another variable flow control device may be provided, through which gas is extracted from the tank by the first pumping unit, with the controller being configured to control the conductance of this variable flow control device.
  • In order to control the amount of liquid in the separating means, the pressure control system preferably comprises means for supplying liquid to the separating means from a source thereof, and control means for controlling the flow of liquid to the separating means. Forexample, in orderto minimize pressure variations due to the extraction of liquid from the separating means by the second pumping unit, the control means is preferably configured to maintain a substantially constant level of liquid within the separating means. In another preferred embodiment, the liquid supply means comprises a variable flow control device such as a butterfly or other control valve, through which liquid is supplied to the separating means, with the control means being configured to vary the conductance of the valve to control the level of liquid within the separating means. For example, a controller may be configured to receive a signal indicative of the level of liquid within the separating means, and to control the conductance of the valve in dependence on the received signal. This signal may be received from a level meter, float detector, or other form of sensor of sufficient sensitivity to allow a substantially constant level of liquid to be maintained within the separating means.
  • One or more flexible tubes are preferably used to convey fluid (single and/or multi-phase) between the components of the system. For example, a flexible tube may be used to convey the multi-phase fluid to the separating means. Further flexible tubes may also be used to convey the single phase streams from the separating means to respective pumping units. This can minimize the transmission of vibrations generated during use of the system back to the fluid within the tool.
  • In another aspect of the present invention, a method is provided for extracting a stream of multi-phase fluid from a photo-lithography tool, the method comprising the steps of: connecting a pumping arrangement to the tool via an extraction tank; operating the pumping arrangement to draw the fluid from the tool; separating the fluid drawn from the tool into gas and liquid phases within the extraction tank, the pumping arrangement extracting separately gas and liquid from the extraction tank; and controlling the pressure within the extraction tank by regulating the amounts of gas and liquid therewithin.
  • Features described above in relation to system aspects of the invention are equally applicable to method aspects, and vice versa.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 schematically illustrates a known system for immersion photolithography; and
  • FIG. 2 schematically illustrates the present invention vacuum system for extracting a multi-phase fluid from an immersion photolithography tool.
  • DETAILED DESCRIPTION
  • With reference to FIG. 2, a system 30 for extracting a multi-phase fluid from an immersion photolithography tool comprises a separating means depicted for purposes of illustration as an extraction tank 32 for receiving the multi-stream fluid drawn from the tool by a pumping arrangement located downstream from the tank 32. The tank 32 is connected to the tool by flexible tubing 34 so as to minimize the amount of mechanical coupling between the system 30 and the tool, and thereby minimize the transmission of vibrations generated during use of the system 30 back to the tool.
  • The tank 32 is configured to separate the liquid and gas phases within the fluid received from the tool. In this example, the fluid received from the tool comprises a mixture of clean dry air (CDA) and ultra-pure water, and so the tank 32 contains any suitable material and/or structure for affecting the separation of the CDA from the water. However, the tank 32 may be configured to separate a different liquid-gas mixture received from the tool. For example, the liquid may comprise an aqueous or non-aqueous solution, and the gas may be other than CDA.
  • The pumping arrangement comprises a first pumping unit 36 for extracting gas from the tank 32, and a second pumping unit 38 for extracting liquid from the tank 32.
  • The first pumping unit 36 may comprise any suitable pump for extracting the gas from the tank 32, and is preferably chosen for compatibility with the gas extracted from the tank 32, which is likely to be saturated with liquid vapor, for minimum transmission of pressure fluctuations back to the gas contained in the tank 32, and for relatively long maintenance periods. In this embodiment, the first pumping unit 36 may conveniently comprise an air-powered ejector pump or a water-based liquid ring pump for extracting CDA from the tank 32. In order to inhibit the transfer of vibrations to the tank 32 during use, the first pumping unit 36 is connected to the tank using flexible tubing 40. As the gas exhaust from the first pumping unit 36 may be saturated or supersaturated with liquid vapor, in this embodiment water vapor, a separator vessel 42 may be connected to the exhaust of the first pumping unit 36, the vessel 42 containing any suitable material and/or structure for affecting the separation of water vapor from the CDA. The water extracted from the CDA is exhaust to a drain, and the CDA is vented to the atmosphere.
  • The second pumping unit 38 may comprise any suitable pump for extracting the liquid from the tank 32, and is preferably chosen for compatibility with the liquid extracted from the tank 32 and for relatively long maintenance periods. In this embodiment where the liquid is water, the second pumping unit 38 may conveniently comprise a water-powered ejector pump or a diaphragm pump for extracting water from the tank 32. In order to inhibit the transfer of vibrations to the tank 32 during use, the second pumping unit 38 is connected to the tank using flexible tubing 44. The internal diameter of the flexible tubing 44 may be chosen to restrict the flow rate of liquid from the tank 32 to the second pumping unit 38. Alternatively, or in addition, a fixed or variable flow restrictor may be located between the tank 32 and the second pumping unit 38.
  • In order to minimize any pressure fluctuations transmitted from the system 30 back to the fluid within the tool, the system 30 includes a pressure control system for maintaining a substantially constant pressure in the tank 32. In this embodiment, this is achieved by regulating the amounts of liquid and gas within the tank 32.
  • The amount of liquid contained in the tank 32 is maintained at a substantially constant level by a controller 46, thereby maintaining a substantially constant volume of gas in the tank 32. The controller 46 is connected to a sensor 48 for detecting the amount of liquid within the tank 32. The sensor 48 may comprise, for example, a level meter, float meter or other form of suitable sensor. The sensor 48 outputs a signal to the controller 46 indicative of the level of the liquid within the tank 32. In response to this signal, the controller 46 outputs to a variable flow control device 50 located between the tank 32 and a pressurized external liquid source 52 connected to the tank 32 a signal which causes the device 50 to vary the flow of liquid, in this embodiment water, to the tank 32. For example, the device 50 may be a butterfly or other control valve having a conductance that can be varied in dependence on, preferably in proportion to, the signal received from the controller 46. By varying the flow rate of the water to the tank from the external source 52, the controller 46 can compensate for any variation in the flow rate of fluid to the tank 32 from the tool and/or any variation in the rate of extraction of liquid from the tank 32 by the second pumping unit 38, and thus maintain the liquid in the tank 32 at a substantially constant level. The controller 46 may be arranged to process the signal received from the sensor 48 to compensate for any ripples generated in the surface of the liquid during use.
  • With the gas occupying a substantially constant volume within the tank 32, any variations in the amount of gas contained in the multi-phase fluid received from the tank, and/or any in the rate of extraction of gas from the tank 32 by the first pumping unit 36, and any temperature fluctuations within the tank 32, could vary the pressure of the gas within the tank 32, and impart pressure and flow fluctuations to the fluid in the tool. The pressure control system is therefore configured to maintain a substantially constant pressure within the tank 32 by also regulating the amount of gas within the tank 32.
  • To achieve this, the pressure control system comprises a controller 54 connected to a sensor 56 for detecting the gas pressure with the tank 32. The sensor 56 may comprise, for example, a pressure sensor, a capacitance manometer or other form of sensor of sufficient sensitivity to achieve the required level of pressure control. The sensor 56 outputs a signal to the controller 54 indicative of the gas pressure within the tank 32. In response to this signal, the controller 54 outputs to a variable flow control device 58 located between the tank 32 and a pressurized external gas source 60 connected to the tank 32 a signal which causes the device 58 to vary the flow of gas, in this embodiment CDA, to the tank 32. A further variable flow control device 62 may be located between the tank 32 and the first pumping unit 36 and configured to receive a signal from the controller 54 to vary the flow of gas from the tank 32. For example, the devices 58, 62 may also be butterfly or other control valves having a conductance that can be varied in dependence on, preferably in proportion to, the signal received from the controller. 54. By controlling the flow of gas into and out from the tank 32, the controller 54 can maintain a substantially constant gas pressure within the tank 32.
  • System 30 provides the capability of extracting a multi-phase fluid from the immersion lithography tool while minimizing any pressure fluctuations imparted thereby to the fluid within the tool.
  • In an embodiment, there is provided a system for extracting a stream of multi-phase fluid from a photo-lithography tool comprising: a pumping arrangement for drawing the fluid from the tool; separating means located upstream from the pumping arrangement for separating the fluid drawn from the tool into gas and liquid phases, the pumping arrangement further comprising a first pumping unit for extracting gas from the separating means and a second pumping unit for extracting liquid from the separating means; and a pressure control system for controlling the pressure within the separating means by regulating the amounts of gas and liquid therein.
  • In an embodiment, the pressure control system comprises gas supply means for supplying gas to the separating means from a source thereof, and control means for controlling the flow of gas to the separating means. In an embodiment, the gas supply means comprises a variable flow control device for gas supply to the separating means, the control means configured to vary the conductance of the variable flow control device to control the pressure within the separating means. In an embodiment, the control means comprises a controller configured to receive a signal indicative of the pressure within the separating means and to control the conductance of the variable flow control device. In an embodiment, the controller is further configured to control the flow of gas from the separating means in response to the received signal. In an embodiment, the pressure control system comprises a further variable flow control device through which gas is extracted from the separating means by the first pumping unit, the controller being configured to control the conductance of the further variable flow control device in response to the received signal. In an embodiment, the pressure control system comprises control means for controlling the flow of gas from the separating means. In an embodiment, the pressure control system comprises a variable flow control device through which gas is extracted from the separating means by the first pumping unit, the control means configured to control the conductance of the variable flow control device to control the pressure within the separating means. In an embodiment, the control means comprises a controller configured to receive a signal indicative of the pressure within the separating means, and to control the conductance of the variable flow control device. In an embodiment, the pressure control system comprises liquid supply means for supplying liquid to the separating means, and control means for controlling the flow of liquid to the separating means. In an embodiment, the control means is configured to control the amount of liquid within the separating means. In an embodiment, the liquid supply means comprises a variable flow control device through which liquid is supplied to the separating means, the control means configured to vary the conductance of the variable flow control device to control the amount of liquid within the separating means. In an embodiment, the control means comprises a controller configured to receive a signal indicative of the amount of liquid within the separating means, and to control the conductance of the variable flow control device in response to the received signal. In an embodiment, the pressure control system comprises liquid supply means for supplying liquid to the separating means from a source thereof, and liquid supply control means for controlling the flow of liquid to the separating means. In an embodiment, the liquid supply control means is configured to control the amount of liquid within the separating means. In an embodiment, the liquid supply means comprises a variable flow control device through which liquid is supplied to the separating means, the liquid supply control means being configured to vary the conductance of the variable flow control device to control the amount of liquid within the separating means. In an embodiment, the liquid supply control means comprises a controller configured to receive a signal indicative of the level of liquid within the separating means, and to control the conductance of the variable flow control device in response to the received signal. In an embodiment, the separation means comprises an extraction tank. In an embodiment, the system comprises a flexible tube for conveying gas from the separating means to the first pumping unit. In an embodiment, the system comprises a flexible tube for conveying liquid from the separating means to the second pumping unit. In an embodiment, the system comprises a flexible tube for conveying liquid from the photolithography tool to the separating means.
  • In an embodiment, there is provided a method of extracting a stream of multi-phase fluid from a photo-lithography tool, the method comprising the steps of: connecting a pumping arrangement to the tool via an extraction tank; operating the pumping arrangement to draw the fluid from the tool; separating the fluid drawn from the tool into gas and liquid phases within the extraction tank, the pumping arrangement extracting separately gas and liquid from the extraction tank; and controlling the pressure within the extraction tank by regulating the amounts of gas and liquid therewithin.
  • While the foregoing description and drawings represent the preferred embodiments of the present invention, it will be apparent to those skilled in the art that various changes and modifications may be made therein without departing from the true spirit and scope of the present invention.

Claims (21)

1.-20. (canceled)
21. A lithographic apparatus, comprising:
a projection device configured to project a radiation beam onto a substrate;
an inlet configured to provide a liquid to a space between the projection device and the substrate;
an outlet configured to remove at least part of the liquid as a multi-phase fluid;
a separator configured to receive the multi-phase fluid from the outlet, the separator configured to separate the fluid into gas and liquid phases;
a first opening at a first side of the separator, the first opening configured to allow the multi-phase fluid into a part of the separator; and
a second opening at a second side of the separator opposite to the first side, the second opening configured to exhaust separated gas from the separator.
22. The apparatus of claim 21, further comprising a pump arrangement configured to draw the multi-phase fluid into the separator.
23. The apparatus of claim 21, further comprising a pump arrangement configured to extract separated liquid, via a third opening, from the separator.
24. The apparatus of claim 21, further comprising a control system configured to control a pressure within the separator by regulating the gas and/or liquid therein.
25. The apparatus of claim 21, further comprising a control system configured to control flow of gas from the separator.
26. The apparatus of claim 21, further comprising a control system configured to control an amount of liquid within the separator.
27. The apparatus of claim 21, further comprising a flow restriction in a fluid path from the separator to a pump fluidly connected to the separator.
28. The apparatus of claim 21, wherein the separator comprises a chamber having the first and second openings therein.
29. The apparatus of claim 21, wherein the first opening is located at a different height than a third opening configured to exhaust separated liquid from the separator.
30. The apparatus of claim 29, wherein the first opening is higher than the third opening.
31. The apparatus of claim 21, further comprising a control system configured to control a level of liquid within the separator.
32. A lithographic apparatus, comprising:
a projection device configured to project a radiation beam onto a substrate;
an inlet configured to provide a liquid to a space between the projection device and the substrate;
an outlet configured to remove at least part of the liquid as a multi-phase fluid;
a separator configured to receive the multi-phase fluid from the outlet, the separator configured to separate the fluid into gas and liquid phases;
a first opening configured to allow the multi-phase fluid into a part of the separator; and
a second opening configured to exhaust separated liquid from the separator, the first opening being located at a different height than the second opening.
33. The apparatus of claim 32, further comprising a pump arrangement configured to draw the multi-phase fluid into the separator.
34. The apparatus of claim 32, further comprising a pump arrangement configured to extract separated liquid, via the second opening, from the separator.
35. The apparatus of claim 32, further comprising a control system configured to control a pressure within the separator by regulating the gas and/or liquid therein.
36. The apparatus of claim 32, further comprising a control system configured to control flow of gas from the separator.
37. The apparatus of claim 32, further comprising a control system configured to control an amount of liquid within the separator.
38. The apparatus of claim 32, further comprising a flow restriction in a fluid path from the separator to a pump fluidly connected to the separator.
39. The apparatus of claim 32, wherein the separator comprises a chamber having the first and second openings therein.
40. A lithographic apparatus, comprising:
a projection device configured to project a radiation beam onto a radiation-sensitive substrate;
an inlet opening located above the stage, the inlet configured to provide a liquid to a space between the projection device and the substrate;
an outlet opening located above the stage, the outlet configured to remove at least part of the liquid as a multi-phase fluid;
a stage configured to support the substrate and moveable relative to the inlet and outlet;
a separator configured to receive the multi-phase fluid from the outlet, the separator configured to separate the fluid into gas and liquid phases;
a first opening at a first side of a chamber of the separator, the first opening configured to allow the multi-phase fluid into a part of the separator;
a second opening at a second side of the chamber opposite to the first side, the second opening configured to exhaust separated gas from the separator; and
a third opening configured to exhaust separated gas from the chamber, the second opening located at a different height than the second opening.
US16/202,170 2004-06-16 2018-11-28 Vacuum system for immersion photolithography Abandoned US20190094715A1 (en)

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US10/869,191 US7481867B2 (en) 2004-06-16 2004-06-16 Vacuum system for immersion photolithography
US12/340,326 US8164734B2 (en) 2004-06-16 2008-12-19 Vacuum system for immersion photolithography
US13/187,166 US8830440B2 (en) 2004-06-16 2011-07-20 Vacuum system for immersion photolithography
US14/469,389 US9507270B2 (en) 2004-06-16 2014-08-26 Vacuum system for immersion photolithography
US15/362,530 US9857699B2 (en) 2004-06-16 2016-11-28 Vacuum system for immersion photolithography
US15/857,368 US10168624B2 (en) 2004-06-16 2017-12-28 Vacuum system for immersion photolithography
US16/202,170 US20190094715A1 (en) 2004-06-16 2018-11-28 Vacuum system for immersion photolithography

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US12/340,326 Expired - Fee Related US8164734B2 (en) 2004-06-16 2008-12-19 Vacuum system for immersion photolithography
US13/187,166 Expired - Fee Related US8830440B2 (en) 2004-06-16 2011-07-20 Vacuum system for immersion photolithography
US14/469,389 Expired - Fee Related US9507270B2 (en) 2004-06-16 2014-08-26 Vacuum system for immersion photolithography
US15/362,530 Expired - Lifetime US9857699B2 (en) 2004-06-16 2016-11-28 Vacuum system for immersion photolithography
US15/857,368 Expired - Lifetime US10168624B2 (en) 2004-06-16 2017-12-28 Vacuum system for immersion photolithography
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US12/340,326 Expired - Fee Related US8164734B2 (en) 2004-06-16 2008-12-19 Vacuum system for immersion photolithography
US13/187,166 Expired - Fee Related US8830440B2 (en) 2004-06-16 2011-07-20 Vacuum system for immersion photolithography
US14/469,389 Expired - Fee Related US9507270B2 (en) 2004-06-16 2014-08-26 Vacuum system for immersion photolithography
US15/362,530 Expired - Lifetime US9857699B2 (en) 2004-06-16 2016-11-28 Vacuum system for immersion photolithography
US15/857,368 Expired - Lifetime US10168624B2 (en) 2004-06-16 2017-12-28 Vacuum system for immersion photolithography

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