WO2002082597A1 - Injection seeded laser with precise timing control - Google Patents

Injection seeded laser with precise timing control Download PDF

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Publication number
WO2002082597A1
WO2002082597A1 PCT/US2002/010448 US0210448W WO02082597A1 WO 2002082597 A1 WO2002082597 A1 WO 2002082597A1 US 0210448 W US0210448 W US 0210448W WO 02082597 A1 WO02082597 A1 WO 02082597A1
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WIPO (PCT)
Prior art keywords
laser
pulse
high voltage
cores
pulses
Prior art date
Application number
PCT/US2002/010448
Other languages
French (fr)
Inventor
Richard M. Ness
Richard L. Sandstrom
William N. Partlo
Alexander I. Ershov
Original Assignee
Cymer, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US09/829,475 external-priority patent/US6765945B2/en
Application filed by Cymer, Inc. filed Critical Cymer, Inc.
Priority to JP2002580447A priority Critical patent/JP4542745B2/en
Priority to DE60231798T priority patent/DE60231798D1/en
Priority to EP02731237A priority patent/EP1378036B1/en
Publication of WO2002082597A1 publication Critical patent/WO2002082597A1/en

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    • HELECTRICITY
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    • H01S3/00Lasers, i.e. devices using stimulated emission of electromagnetic radiation in the infrared, visible or ultraviolet wave range
    • H01S3/23Arrangements of two or more lasers not provided for in groups H01S3/02 - H01S3/22, e.g. tandem arrangements of separate active media
    • H01S3/2366Arrangements of two or more lasers not provided for in groups H01S3/02 - H01S3/22, e.g. tandem arrangements of separate active media comprising a gas as the active medium
    • 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
    • G03F7/70008Production of exposure light, i.e. light sources
    • G03F7/70025Production of exposure light, i.e. light sources by lasers
    • 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
    • G03F7/70008Production of exposure light, i.e. light sources
    • G03F7/70041Production of exposure light, i.e. light sources by pulsed sources, e.g. multiplexing, pulse duration, interval control or intensity control
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    • 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
    • G03F7/70483Information management; Active and passive control; Testing; Wafer monitoring, e.g. pattern monitoring
    • 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
    • G03F7/70483Information management; Active and passive control; Testing; Wafer monitoring, e.g. pattern monitoring
    • G03F7/7055Exposure light control in all parts of the microlithographic apparatus, e.g. pulse length control or light interruption
    • G03F7/70575Wavelength control, e.g. control of bandwidth, multiple wavelength, selection of wavelength or matching of optical components to wavelength
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    • H01S3/09702Details of the driver electronics and electric discharge circuits
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    • H01S3/2207Noble gas ions, e.g. Ar+>, Kr+>
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    • H01S3/2258F2, i.e. molecular fluoride is comprised for lasing around 157 nm
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Definitions

  • KrF excimer lasers are the state of the art light source for integrated circuit lithography. Such lasers are described in U.S. Patent No. 4,959,840, U.S. Patent No. 5,991,324 and U.S. Patent No. 6,128,323. The lasers operate at wavelengths of about 248 nm. With the KrF laser integrated circuits with dimensions as small as 180 nm can be produced. Finer dimensions can be provided with ArF lasers which operate at about 193 nm or F 2 lasers which operate at about 157 nm.
  • FIGS. 1, 1A and IB A typical prior-art KrF excimer laser used in the production of integrated circuits is depicted in FIGS. 1, 1A and IB. A cross section of the laser chamber of this prior art laser is shown in FIG. IB.
  • pulse power system 2 powered by high voltage power supply 3 provides electrical pulses to electrodes 6 located in a discharge chamber 8.
  • Typical state-of-the art lithography lasers are operated at a pulse rate of about 1000 to 2000 Hz with pulse energies of about 10 mJ per pulse.
  • the laser gas (for a KrF laser, about 0.1% fluorine, 1.3% krypton and the rest neon which functions as a buffer gas) at about 3 atmospheres is circulated through the space between the electrodes at velocities of about 1,000 to 2,000 cm per second. This is done with tangential blower 10 located in the laser discharge chamber.
  • the laser gases are cooled with a heat exchanger
  • line narrowing module 18 (sometimes referred to as a line narrowing package or LNP).
  • Commercial excimer laser systems are typically comprised of several modules that may be replaced quickly without disturbing the rest of the system. Principal modules include:
  • Electrodes 6 consist of cathode 6 A and anode 6B.
  • Anode 6B is supported in this prior art embodiment by anode support bar 44 which is shown in cross section in FIG. IB. Flow is counter-clockwise in this view.
  • One corner and one edge of anode support bar 44 serves as a guide vane to force air from blower 10 to flow between electrodes 6 A and 6B.
  • Other guide vanes in this prior art laser are shown at 46, 48 and 50.
  • Perforated current return plate 52 helps ground anode 6B to the metal structure of chamber 8. The plate is perforated with large holes (not shown in FIG. 3) located in the laser gas flow path so that the current return plate does not substantially affect the gas flow.
  • a peaking capacitor bank comprised of an array of individual capacitors 19 is charged prior to each pulse by pulse power system 2.
  • one or two preionizers 56 weakly ionize the lasing gas between electrodes 6A and 6B and as the charge on capacitors 19 reaches aboutl6,000 volts, a discharge across the electrode is generated producing the excimer laser pulse.
  • the gas flow between the electrodes of about 1 to 2 cm per millisecond, created by blower 10, is sufficient to provide fresh laser gas between the electrodes in time for the next pulse occurring one half to one millisecond later.
  • a feedback control system measures the output laser energy of each pulse, determines the degree of deviation from a desired pulse energy, and then sends a signal to a controller to adjust the power supply voltage so that energy of the subsequent pulse is close to the desired energy.
  • These excimer lasers are typically required to operate continuously 24 hours per day, 7 days per week for several months, with only short outages for scheduled maintenance.
  • seed laser a narrow band laser beam into a gain medium.
  • a laser called the "seed laser” or
  • master oscillator is designed to provide a very narrow laser band beam and that laser beam is used as a seed beam in a second laser. If the second laser functions as a power amplifier, the system is typically referred to as a master oscillator, power amplifier (MOPA) system. If the second laser itself has a resonance cavity, the system is usually referred to as an injection seeded oscillator (ISO) and the seed laser is usually called the master oscillator and the downstream laser is usually called the power oscillator.
  • ISO injection seeded oscillator
  • the duration of the electric discharge is very short duration, typically about 20 to 50 ns (20 to 50 billions of a second).
  • the population inversion created by the discharge is very rapidly depleted so that the population inversion effectively exists only during the discharge.
  • the population in the downstream laser must be inverted when the beam from the upstream laser reaches the second laser. Therefore, the discharges of the two lasers must be appropriately synchronized for proper operation of the laser system. This can be a problem because within typical pulse power systems there are several potential causes of variation in the timing of the discharges. Two of the most important sources of timing variations are voltage variations and temperature variations in saturable inductors used in the pulse power circuits.
  • a typical KrF laser has a natural bandwidth of about 300 pm (FWHM) centered at about
  • ArF lasers have a natural bandwidth of about 500 centered at about 193 nm and is typically line narrowed to about 0.5 pm. These lasers can be relatively easily tuned over a large portion of their natural bandwidth using the line narrowing module 18 shown in FIG. 2.
  • F 2 lasers typically produce laser beams with most of its energy in two narrow lines centered at about 157.63 nm and 157.52 nm. Often, the less intense of these two lines (i.e., the 157.52 nm line) is suppressed and the laser is forced to operate at the 157.63 nm line.
  • the natural bandwidth of the 157.63 nm line is pressure dependant and varies from about 0.6 to 1.2 pm.
  • An F 2 laser with a bandwidth in this range can be used with lithography devices utilizing a catadiophic lens design utilizing both refractive and reflective optical elements, but for an all-refractive lens design the laser beam should have a bandwidth of about 0.1 pm to produce desired results.
  • optical filters for selecting out narrow ranges of light in a beam.
  • One such filter is a monochromator in which light passing through a first slit is coUimated with a lens, dispersed spectrally with a dispersing element such as a prism or grating and the dispensed light is then focused to a focal plane with a selected spectral range collected through a slit located at the local plane.
  • the present invention provides a narrow band laser system having two laser subsystems.
  • the first laser subsystem is configured to provide a very narrow band pulsed output beam which is used to injection seed the second laser subsystem where the narrow band pulsed seed beam is amplified to produce a narrow band pulsed output beam.
  • a pulse power supply is provided which is specially configured to precisely time the discharges in the two laser subsystem so that the discharges are properly synchronized.
  • Preferred embodiments include a pulse power system with a pulse transformer unit having two sets of transformer cores.
  • a single upstream pulse compression circuit provides high voltage pulses in parallel to the primary windings of all of the cores in both sets.
  • Separate secondary conductors provide very high voltage pulses respectively to separate downstream circuits supplying discharge pulses to the electrodes in each of two separate laser chambers.
  • Preferred embodiments include KrF, ArF and F 2 systems.
  • line narrowing may be accomplished within the resonant cavity of the seed laser or the output of the seed laser could be line narrowed using a pre-gain filter.
  • FIG. 1 is a drawing of a prior art commercial excimer lithography laser.
  • FIG. 1A is a block diagram showing some of the principal elements of a prior art commercial excimer lasers used for integrated circuit lithography.
  • FIG. IB is a drawing of the laser chamber of the FIG. 1 laser.
  • FIG. 2 is a block diagram showing features of the present invention.
  • FIG. 3 is an electrical circuit drawing showing features of a preferred embodiment of the present invention.
  • FIG. 3 A is a drawing of a pulse transformer.
  • FIG. 3B is a drawing showing features of FIG. 3A.
  • FIG. 3C is a modification of the FIG. 3 circuit providing an adjustable delay.
  • FIG. 3C1 is a B-H curve.
  • FIG. 3D shows an alternate filter adjustment technique.
  • FIGS. 4 and 5 are black diagrams of F 2 laser systems.
  • FIGS. 6 and 6 A show features of a first grating monochromator.
  • FIG. 7 shows features of a second grating monochromator.
  • FIG. 8 shows features of an etalon filter.
  • FIGS. 9 and 10 are diagrams of power gain stages.
  • FIGS. 11, 11 A, 11B and 11C show features of a pulse power system.
  • FIG. 12 shows a pulse energy detector in a feedback control system.
  • FIG. 13 is a block diagram showing features of a preferred embodiment of the present invention.
  • FIG. 14 is a block diagram showing features of a preferred embodiment of the present invention.
  • FIG. 13 A first preferred embodiment of the present invention is shown in FIG. 13.
  • This is an injection seeded power amplifier ArF laser system 200. It comprises two laser systems, a seed laser system 202 and a power amplifier laser system 204.
  • the seed laser system 202 comprised of laser chamber 206 and a line narrowing module 208 comprising a four prism 35X beam expander 210 a tuning mirror 212 and a 10-inch grating 214.
  • the power amplifier laser system comprises once through laser chamber 216.
  • the seed laser is apertured to produce an output beam with a small cross section preferably 1.5 mm wide and 6 mm high.
  • the system includes lens 218 and lens 219 which together expand the seed laser output beam cross section to 3 mm by 12 mm.
  • This beam of pulses having per pulse energies of about 0.05 mJ is amplified in power amplified laser system to pulse energies of about 10 mJ per pulse.
  • a small portion about 4 percent of the beam is sampled by partially reflecting mirror 220 and directed to wavemeter 222 which monitors the pulse energy wavelength and bandwidth of the power amplifier output beam.
  • This wavemeter preferably is as described in U.S. Patent No. 5,978,394 or U.S. Patent No. 6,192,064 Bl.
  • Signals from the wavemeter are utilized by controller 224 to adjust charging voltage of a pulse power system which in turn determines the discharge voltage of both laser systems as described in a following section of this specification.
  • the pulse power system is configured as described in that section so that the discharges are precisely tuned to produce the desired output pulse energy.
  • the controller also controls the pivot portion of tuning mirror 212 to provide the desired central wavelength.
  • Pulse Timing Preferred embodiments of the present invention utilize a pulse power system configured to control the timing of the discharge of the two laser systems to produce desired output pulse laser beams. These embodiments make use of a fractional turn pulse transformer design similar to fractional turn pulse transformer described in U.S. Patent No. 5,142,166. In these embodiments the portion of the pulse power circuits for the two laser systems are separate downstream of the pulse transformer system and portions of the pulse power circuits upstream of the pulse transformer system is common for both laser systems.
  • FIG. 3 shows an electrical outline of the principal elements of a preferred pulse power system.
  • the portion of the system upstream of the pulse transformer system is very similar to the circuit shown in FIG. 11 which is described in detail U.S. in U.S. Patent No. 6,151,346 (hereby incorporated by reference).
  • a single bank of capacitors define a charging Co capacitor bank 42.
  • Electrical pulses are generated by the closing of switch Si 46 which consists of two IGBT switches mounted in parallel
  • Lo inductor 48 holds off current flow through S t so it can close without any deterioration to charge up C-* capacitor bank 52.
  • Li saturable inductor holds off substantial current flow through pulse transformer system 56 until inductor Li saturates at which time the primary turns of fractional turn pulse transformer system 56 is pulsed with a short about 0.5 microsecond
  • transformer system 56 is comprised of two separate transformer units 56A and 56B which in this case are virtually identical.
  • Each of the pulse transformer unit 56 is similar to the pulse transformer described in U.S.
  • the pulse transformer units of the present embodiment has only a single turn in the secondary winding and 23 induction units.
  • the transformer as configured as an auto transformer as shown in FIG. 3B to provide a 1:24 step-up ratio.
  • Each of the 23 induction units comprise an aluminum spool 56A having two flanges (each with a flat edge with threaded bolt holes) which are bolted to positive and negative terminals on printed circuit board 56B as shown along the bottom edge of FIG. 3A. (The negative terminals are the high voltage terminals of the twenty three primary windings.) Insulators
  • each transformer is a single OD stainless steel rod mounted within a tight fitting insulating tube of Teflon ® (PTFE).
  • the transformer units are in four sections as shown in FIG. 3A.
  • the low voltage end of stainless steel secondary shown as 56D in FIG. 3A is tied to the primary HV lead on printed circuit board 56B at 56E, the high voltage terminal is shown at 56F.
  • the transformer assumes an auto- transformer configuration and the step-up ratio becomes 1:24 instead of 1:23.
  • an approximately -1400 volt pulse between the + and - terminals of the induction units will produce an approximately -35,000 volt pulse at terminal 56F on the secondary side.
  • a 1000 volt primary pulse produces a pulse on the secondary sides of both transformers of about 24,000 V.
  • This single turn secondary winding design provides very low leakage inductance permitting extremely fast output rise time.
  • the general configuration of the pulse transformer system is shown in FIG. 3B. As indicated in this figure, the primary high voltage pulse of about 1000N produced by the upstream portion of the pulse power system arrives at each pulse transformer at exactly the same time and as the corresponding output pulse of each of the transformers will therefore be substantially identical in shape and time. Applicants estimate that the jitter at the output of the two transformer will be less than one nanosecond.
  • the portion of pulse power circuits downstream of the pulse transformers are separate but substantially equal so that the jitter at electrodes 83 and 84, A and B, is estimated to be less than 3 ns. Therefore, the gain medium in both lasers is produced at the same time with a variation of less than about 3 ns.
  • the duration of each of the pulses is about 20 to 50 ns so that the laser pulse produced in the first laser is properly amplified in the second laser.
  • the circuit is provided with a bias circuit to bias all saturable inductors so that they are reverse conducting prior to each pulse.
  • the bias circuit is designed so that during a short period immediately after the pulse the saturable inductors remain forward conducting so that pulse energy reflected from the electrodes can be recovered as explained in detail in U.S. Patent No. 5,729,562.
  • the output coupler of the first laser is located about one foot downstream of the input window of the second laser. Therefore, for this reason or for other reasons, it may be desirable to delay the discharge of the second laser as compared to the first laser. Since the electrical pulse travels through a good conductor at a rate of about 1.0 ns/20 cm, this can easily be accomplished by making a conductor carrying the pulse of the second laser longer (for example, by 20 to 40 cm) than a corresponding conductor for the first laser.
  • Another approach to control the timing of the discharge in one laser relative to the other is to insert a saturable inductor in the circuit shown in FIG. 3 in one of the branches downstream of transformer 56 such as at location 63 shown in FIG. 3C.
  • This saturable inductor is fitted with an adjustable forward bias.
  • the forward bias which is applied is chosen so that the time to complete the forward saturation of the inductor is approximately equal to the desired delay time.
  • the delay time is a function of the number of turns in the saturable inductor, the cross-section of its magnetic core and magnetic flux swing ⁇ B of the inductor. Since the required delay is very small the number of turns can be one and the core can be small (such as 2 inch diameter) and the flux swing ⁇ B can also be small as indicated in FIG.
  • the relative delay can be adjusted.
  • the delay control could be incorporated into a feedback loop design to control jitter. Since the delay expected to be required for an oscillator / amplifier configuration is small (on the order of ns or 10' s of ns), the delay reactor can be made small.
  • the core material can be selected to minimize the losses introduced in the circuit, again since the volt-second requirement is likely to be much smaller than that required in the power pulse compression circuit.
  • FIG. 3D Another technique for providing for an adjustable delay is shown in FIG. 3D. In this case, a conductor 101 carrying the pulse to one of the lasers is arranged in a single loop coil 102 and a rod 103 having high permeability arranged to be movable into and out of the coil. The rod can be positioned with a fast drive such as a stepper motor or a piezoelectric driver.
  • Pulse Transformer Configurations Many variations of the pulse transformers configuration shown in FIG. 3B are possible.
  • the preferred output voltage for the two laser systems may not be the same. If different voltages are needed this can be easily accomplished by providing a smaller or larger number of induction units for one of the transformers relative to the other one.
  • switches could be included in one of the transformers to cut out some of the induction units to reduce the discharge voltage output of that transformer relative to the other one.
  • Taps could be provided between any of the four transformer sections of either transformer to take off the secondary voltage at reduced levels.
  • FIGS. 4 through 11D describe various techniques for designing and operating injection seeded F 2 laser systems.
  • a preferred first F 2 injection seed light source may be a conventional F 2 laser, using either a plane-parallel optical resonator, or an unstable resonator configuration.
  • the pulse power supply for both laser subsystems is preferably provided utilizing one of the techniques described above. This assures that the timing of the discharge of each laser subsystem is adequately synchronized.
  • the seed laser beam is filtered downstream of the seed laser.
  • the seed laser preferrably will generate enough energy such that, after filtering, 10 - 100 ⁇ J of narrowband energy is available for seeding the F 2 power gain stage.
  • An unstable resonator will produce a lower divergence, more spatially coherent beam than a stable resonator, which may be of some advantage in coupling energy through the injection spectral filter.
  • a lower divergence beam will be more easily focused down to the input slit of the monochromator.
  • Another design option is to operate the first F 2 light source laser at relatively low pressure ( ⁇ 100 - 200 kPa). This produces a substantially reduced spectral width : 0.3 - 0.6 pm.
  • a lower spectral width means a greater fraction of the energy entering the post gain filter will make it through the filter.
  • the raw output energy from the first F 2 light source will be much lower, but this may not be a practical disadvantage because the maximum energy that the injection filter can handle is similarly limited.
  • a conventional F 2 laser for use as the first F 2 light source in a preferred embodiment is a standard KrF lithography laser system modified for operation as a F laser.
  • KrF lithography lasers are well known and there are more than 1,000 of these units operating today in integrated circuit fabrication plants as light sources for integrated circuit lithography machines. These lasers produce laser pulses at rates in the range of 1000 to 2000 pulses per second and are available from suppliers such as Cymer, Inc. with offices in San Diego, California.
  • These lithography lasers are described in detail in many patents such as U.S. Patent No. 5,991,324 and U.S. Patent No. 6,128,323 both of which are incorporated herein by reference.
  • the major modifications needed for operation as an F 2 laser are to change the gas mixture to about 0.1 percent fluorine and the remainder helium (although a neon or a combination of helium and neon could be used) and preferably the upper range of the discharge voltage is increased from about 26,000 volts to about 36,000 volts.
  • a basic prototype F 2 laser system used for both the first F 2 light source and the power gain stage is described below in the section entitled "F 2 Laser System Designs".
  • a preferred conventional grating-monochromator pre-power gain filter is described by reference to FIG. 6.
  • This filter when used with a free-running F 2 laser as the master oscillator, preferably must slice out a 0.1 pm bandwidth portion of the free-running spectrum from the master oscillator, and be capable of producing the 10 - 100 ⁇ J of narrow-band energy required by the following amplifier stage.
  • This first filter embodiment shown in FIG. 6 is that of a conventional grating monochromator. Light from the master oscillator is first focussed down onto an input slit 50.
  • a curved mirror 52 which may be a simple spherical mirror, or an off-axis paraboloid
  • the coUimated light is directed to a grating 54.
  • the grating is a high dispersion type (e.g. an echelle grating) chosen to disperse light in the 157 nm wavelength range.
  • the grating is in the Lithrow configuration. Light at a selected very narrow range which is reflected back along the beam path 54 is re-imaged on an exit slit 57 with the aid of beam splitter 56.
  • the various geometric and optical parameters of the arrangement i.e.
  • slit widths, grating dispersion, curved mirror focal length determine the bandwidth of the light leaving the exit slit.
  • One design problem that must be overcome is the high peak intensities that are reached at the input and exits slits when one attempts to couple the desired amount of energy through the monochromator.
  • One method to handle these high intensities is to use refractive slits, i.e. knife edge wedges that refract the unwanted light into another direction, without absorbing the energy.
  • refractive slits i.e. knife edge wedges that refract the unwanted light into another direction, without absorbing the energy.
  • the arrangement of FIG. 6 includes an additional beamsplitter 58 and a linear detector array 60 placed at an exit image plane.
  • This addition solves an important remaining problem: how to maintain the (tunable) injection filter at the desired wavelength. If the grating angle is in error by more than a few 10's of micro- radians, the seed beam will miss the exit slit, and there will be no narrow-band energy to lock the following power amplifier stage. If the angle is very slightly incorrect the amplified spectrum will not be at the desired wavelength. Fortunately, the monochromator can, in essence, monitor itself. The image formed by the grating and curved mirror is the dispersed spectrum of the light entering the monochromator.
  • the second beam splitter produces two identical images (spectra), one at the exit slit, and one at the linear detector array.
  • the linear detector array senses the relatively broad spectrum from the free-running master oscillator and converts it into a video signal representative of the spectral intensity at each point on the array. Since the free-running wavelength is stable and well-known, it serves as a calibration standard for the monochromator.
  • a controller 66 reads out the linear detector array, and adjusts the grating angle so as to place the image of the spectrum centered at a desired point on the array, near the center for example. In this way the monochromator is self-stabilized to the free-running spectrum of the master oscillator.
  • the exit slit position corresponds to a particular position, and hence wavelength, on the linear array.
  • the wavelength of the light leaving the exit slit can be precisely determined.
  • One method for calibrating this arrangement is to place a beamsplitter 62 in the path of the beam exiting the monochromator and to monitor the beam energy with energy detector 64. Such a detector is desirable in any event, since the energy of the injection seed needs to be monitored.
  • Calibration A calibration sequence would proceed as follows: (1) With the grating at a starting angle, the laser is fired and the output energy from the exit slit is monitored, along with the spectral image falling on the linear array. The peak of the spectrum is determined in terms of the position, in pixels, on the array. (2) The grating angle is incremented and the measurements are repeated. (3) After the grating angle is scanned though a range, the resulting data is examined. The position of the spectrum on the array (in pixels) where the output energy maximizes corresponds to the equivalent position of the slit.
  • the known dispersion of the monochromator can be used to retune the grating to other wavelengths. For instance, suppose the monochromator dispersion is 0.1 pm/pixel, and further suppose the calibrated position of the exit slit is pixel 300. If the desired wavelength of the output is 157.6299 nm (157,629.9 pm), the center of the free-running spectrum, then the grating angle is adjusted so that the center of the image falls at pixel 300. If the desired wavelength is +0.2 pm away from the center (157.630 lnm), then the grating would be moved so that the center of the image would fall at pixel 302.
  • a further refinement is to include the pressure of the master oscillator in the calibration and subsequent use of the monochromator, since the center of the free-running spectrum is pressure dependent. This pressure dependence must be included in the calibration, especially if the pressure of the master oscillator is allowed to vary significantly.
  • Other pressure shift coefficients can be used if other buffer gasses are used (neon for instance, or mixtures of helium and neon).
  • Modified Grating Monochromator An alternate method for producing the narrow-band light is with a modified grating monochromator as shown in FIG. 7.
  • This filter filters the output beam of a master oscillator which produces a well-collimated, nearly diffraction limited coherent beam, and in this case we eliminate the entrance slit of the monochromator.
  • a beam expander 70 is used to reduce the divergence from the master oscillator and to physically match the size of the beam from the master oscillator to grating 54.
  • the dispersed light from the grating is focussed via a curved mirror (or lens) to an exit slit 72 where the desired wavelength is selected.
  • the operation of the linear detector array 60 and controller 66 is the same as previously described.
  • the advantage of this arrangement is that it eliminates the need for an entrance slit and the associated problems with high peak intensities.
  • This arrangement has a disadvantage in that the pointing stability of the master oscillator is now a factor in the position of the image on the array, and hence the wavelength selection process. For slowly varying changes in the input angle from the master oscillator, the controller can retune the grating and keep the wavelength constant.
  • An etalon 78 can also be used as a bandpass filter as shown in FIG. 8. As with the monochromator filters, it is desirable that the etalon be self -referenced to the free-running spectrum of the master oscillator, which is used as an atomic standard.
  • the beam from the master oscillator is first expanded with beam expander 70, both to lower its divergence and to reduce the power density on the etalon. After expansion, the beam passes through a special "partial diffuser" 74, an optical element which transmits most of the light unaltered, but scatters a small faction into a range of angles. Examples of this are diffractive optics with low diffraction strength, or very lightly and finely ground optical flats.
  • the light then passes through the etalon at near normal incidence.
  • the etalon's bandpass characteristics are determined by its free spectral range (FSR) and finesse. For instance, an etalon with an FSR of 2 pm and a finesse of 20 will have a bandpass of 0.1 pm FWHM.
  • the etalon will then transmit a 0.1 pm slice of the spectrum from the free- running master oscillator.
  • FSR free spectral range
  • a narrower starting spectrum will reduce the amount of energy in the adjacent transmission orders of the etalon ( ⁇ 1 FSR from the central wavelength).
  • a lens 76 (or curved mirror) focuses the light to a point, where an aperture is placed.
  • a portion of the beam is split off by beam splitter 80 and monitored by a photodiode array 82 which provides center wavelength and bandwidth signals to controller 66 which uses this information to control the etalon 78.
  • the purpose of the aperture is to block all light except the on-axis, non- diffused component of the beam. This light, which is narrow-band, is then sent on to the power amplifier stage.
  • a beam splitter and optical detector follows the aperture, to monitor the energy leaving the injection filter.
  • the central wavelength of the etalon's bandpass will not align with the center of the spectrum of the free-running master oscillator.
  • the etalon needs to be tuned.
  • Four methods are possible, depending on whether the etalon is a solid plate type or an air- spaced type.
  • the etalon can be tilted with respect to the incoming beam, or the temperature of the etalon can be varied, which effectively changes the optical thickness of the plate.
  • the angle can be varied, the plate spacing can be varied (by PZT actuators, for instance), or the index of refraction of the gas between the plates can be varied by changing the density of the gas.
  • the etalon is an air-spaced type which is enclosed in a pressure-tight housing 84 as indicated in FIG. 8.
  • a pressure controller is used to vary the pressure of the gas within the housing (at constant temperature), thereby pressure tuning the etalon. Since the amount of tuning required is very small (about ⁇ 0.2 to ⁇ 0.5 pm), the pressure change that is needed is also very small, about ⁇ 3 to ⁇ 8 torr with nitrogen as the gas. This can be achieved either by changing the volume of the (sealed) housing, or by actively introducing or withdrawing gas from a suitable supply. As the etalon is pressure tuned, the output intensity will alternately increase and extinguish as the bandpass wavelength sweeps through the spectrum from the free-running master oscillator.
  • Control over the tuning of the etalon is attained by including additional optical elements that turn the etalon into its own etalon spectrometer.
  • An additional beamsplitter is located prior to the exit aperture, and forms a second focal plane of the lens.
  • the intensity distribution consists of an intense spot at the center of focus plus a much weaker conventional etalon ring pattern.
  • the intense spot is formed by the non-diffused portion of the beam passing through the etalon, whereas the etalon ring pattern is formed by the diffused portion of the beam.
  • the intense central spot is not used here and is blocked with a beam stop 81.
  • a linear detector array 82 is then placed in the focal plane to read out the etalon ring pattern.
  • This arrangement is very similar to the design of current wavemeters used in lithographic lasers. For a given optical arrangement, there is a direct relationship between the diameters of the etalon rings and the central wavelength of the etalon bandpass.
  • Calibration of the arrangement is done in a manner similar to the procedure previously described for the monochromator filter.
  • a calibration sequence would proceed as follows: (1) With the etalon pressure- tuned to a starting wavelength, the laser is fired and the output energy from the exit aperture is measured, along with the etalon ring pattern falling on the linear array. The diameter of the innermost, fully formed ring is determined. (2) The pressure controller increments the pressure in the etalon, and the measurements are repeated. (3) After the etalon is pressure-tuned through one free- spectral range, the resulting data is examined. The diameter of the innermost ring where the output energy maximizes corresponds to the condition where the bandpass of the etalon is exactly tuned to the peak of the free-running spectrum from the master oscillator which is pressure dependent.
  • the wavelength of the etalon bandpass filter can be stabilized by varying the pressure in the etalon so as to maintain this diameter.
  • the etalon ring pattern can be converted directly into a "wavelength" by employing the same non-linear etalon equations used in the lithographic wavemeters. This allows the bandpass function to be detuned from the peak of the master oscillator spectrum by a known amount.
  • a further refinement is to include the pressure of the master oscillator in the calibration and subsequent use of the etalon, as has been previously described.
  • the narrow spectral band (of about 0.1 pm or less) chosen for operation of the laser system will be the narrow band meeting desired bandwidth specifications with the maximum output pulse energy.
  • a limited amount of wavelength tuning is possible with the pregam filters described above. Applicants expect that a tuning range of at least about 1.2 pm can fairly easily be achieved. Additional tuning is feasible with some significant compromise of output pulse energy.
  • the tuning range is a function of laser gas pressure as indicated above. Therefore a longer overall range can be achieved by adjusting the pressure in the laser.
  • the power gain stage can be configured as a power oscillator as shown in FIG. 9.
  • Many different resonators can be used for the PO design, depending on the desired output.
  • the resonator is an off-axis hybrid unstable resonator, formed by two split-coated mirrors, all as shown in FIG. 9.
  • the injected seed beam 90 is aligned to a central axis along the top of an unstable resonator 92, and first travels through a 50 % partial reflector 93A.
  • the rear resonator optic 94 is a zero power meniscus type, which does not disturb the coUimation of the injected beam.
  • the injected beam fills the Fresnel core of the resonator, establishing control over the intercavity field (the Fresnel core in this case is the volume formed between 50% R mirror 93A and 100% R mirror 94A).
  • the beam After propagating with amplification to the front optic, the beam is reflected from the 100 % reflective, convex surface.
  • the beam expands and is amplified as it travels to the rear optic, where a portion reflects off of the 100% reflective, concave surface 93B and a portion reflects off surface
  • the front optic is a zero-power meniscus type, to preserve the coUimation of the output beam.
  • This type of a resonator forms a power oscillator because the 50% and 100% reflective surfaces provide feedback into the Fresnel core of the resonator.
  • the advantage of this type of resonator is (1) there is no central obscuration or hole in the beam, and (2) it requires very little seed energy to lock the power oscillator to the seed.
  • FIG. 10 A power gain stage in the form of a power amplifier is shown in FIG. 10.
  • the resonator is similar to the one shown in FIG. 9 except the feedback has been eliminated by changing the 50% reflective surface 93A to an anti-reflective surface. This configuration produces an off-axis, multipass power amplifier.
  • F 2 Laser System Designs Several prototype F 2 laser systems have been built and tested by Applicants and their fellow workers to serve as gain media for both as the first F 2 light source, and as the power gain stage.
  • the gas mixture was 0.1% fluorine in 4 atmospheres of helium and the electrode gap was reduced to 10 mm.
  • a modified pulse power system for both the first F 2 light source and the power gain stage, a modified pulse power system is used and a circuit diagram for the system is shown in FIG. 11 and in FIGS. 2 and 3.
  • the major difference between the pulse power system for these embodiments and corresponding systems for prior art KrF lasers is the pulse transformer 56 which for the F 2 laser provides higher output voltage and, as described above, the portion of the circuit upstream of the transformer is a single circuit and the portion downstream of the transformer is a divided circuit.
  • the single four-section stainless steel rod described in U.S. Patent No.
  • FIGS. 11 A, 11B and llC The secondary conductor consists of two coaxial assemblies (the cross-section of which are depicted in FIGS. 1 IB and 11C) connected with bus bar as shown at 302 and HV cable as shown at 304.
  • FIG. 11D shows the same cross-sections as 11B and 11C and also the layers 306 of MetglasTM and mylar film which is wrapped around the cylinder portion 308 of the spools forming the primary winding. Also identified in FIG.
  • each of the two pulse transformer sections feeding the two lasers is comprised of 12 induction units (instead of the 23 shown in FIG. 3HB). However, the three secondary conductors passing through the 12 induction units produce voltage amplification of 36.
  • Coupling between the primary cylinders and the three coaxial secondary conductors is provided by wrappings of MetglasTM and mylar film as described above with reference to FIG. 8E.
  • an extra stage of compression (with one additional capacitor bank C p-1 ) is provided.
  • the capacitor banks in this embodiment have the following values:
  • the modified pulse power system in this prototype embodiment produces an output rise time of about 80 ns into the peaking capacitor bank.
  • the step-up ratio of the pulse transformer is 36X (as compared to the 24X in the embodiment described in detail above). This permits the laser to operate at substantially higher voltages with correspondingly lower F 2 concentrations as compared to the unmodified pulse transforms. Applicant has determined that the higher voltage operation improves discharge stability, and permits higher repetition rates.
  • two separate transformers are provided each of which are supplied by a primary current from a common source as shown in FIG. 3B but each of the transformers are configured a shown in FIGS. 11A, B, C and D to provide a 36X step up instead of the 24X as shown in FIG. 3B.
  • the output of power gain stage of preferred embodiments of the present invention will have ultraviolet bandwidths of about 0.1 pm or less with a line center within the nominal F 2 157.63 nm line which covers a spectral range of about ⁇ 0.5 pm around the nominal wavelength.
  • a small amount of light energy in other spectral ranges are produced in F 2 lasers especially red and infrared light when helium is used. If this red light is a problem, it can be easily eliminated with well know optical filters designed to transmit 157 nm UV light and absorb or reflect away (not back into the laser) the red light.
  • a post output filter of one of the types described above could be added to further line narrow the output beam in the UN range.

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Abstract

A narrow band laser system having two laser subsystems. The first laser subsystem is configured to provide a very narrow band pulsed output beam which is used to injection seed the second laser subsystem where the narrow band pulsed seed beam is amplified to produce a narrow band pulsed output beam. A pulse power supply is provided which is specially configured to precisely time the discharges in the two laser subsystem so that the discharges are properly synchronized. Preferred embodiments include a pulse power system with a pulse transformer unit having two sets of transformer cores. A single upstream pulse compression circuit provides high voltage pulses in parallel to the primary windings of all of the cores in both sets. Separate secondary conductors (one passing through one set of cores and the other passing through the other set of cores) provide very high voltage pulses respectively to separate downstream circuits supplying discharge pulses to the electrodes in each of two separate laser chambers. Preferred embodiments include KrF, ArF and F2 systems. In these preferred embodiments, line narrowing may be accomplished within the resonant cavity of the seed laser or the output of the seed laser could be line narrowed using a pre-gain filter.

Description

INJECTION SEEDED LASER WITH PRECISE TIMING CONTROL
This Application is a Continuation-rn-Part of Serial No. 09/848,043 filed May 3, 2001, "Injection Seeded Laser with Precise Timing Control", Serial No. 09/829,475 filed April 9, 2001, "Injection Seeded F2 Laser With Pre-Injection Filter", Serial No. 09/473,795 filed December 28, 1999, "Very Narrow Band Injection Seeded F2 Lithography Laser", Serial No. 09/459,165 filed December 10, 1999, "Injection Seeded F2 Lithography Laser"; 09/438,249 filed November 12, 1999, "F2 Laser with Visible and IR Control"; Serial No. 09/421,701, filed October 20, 1999, "Single Chamber Gas Discharge Laser with Line Narrowed Seed Beam", and Serial No. 09/407,120 filed September 27, 1999, "Line Narrowed Laser with Etalon Output Coupler". This invention relates to lasers and in particular to injection seeded lasers useful for integrated circuit lithography.
BACKGROUND OF THE INVENTION
Prior Art Lithography Lasers KrF excimer lasers are the state of the art light source for integrated circuit lithography. Such lasers are described in U.S. Patent No. 4,959,840, U.S. Patent No. 5,991,324 and U.S. Patent No. 6,128,323. The lasers operate at wavelengths of about 248 nm. With the KrF laser integrated circuits with dimensions as small as 180 nm can be produced. Finer dimensions can be provided with ArF lasers which operate at about 193 nm or F2 lasers which operate at about 157 nm. These lasers, the KrF laser, the ArF laser and the F2 lasers, are very similar, in fact the same basic equipment used to make a KrF laser can be used to produce an ArF laser or an F2 laser merely by changing the gas concentration, increasing the discharge voltage and modifying the controls and instrumentation to accommodate the slightly different wavelength.
A typical prior-art KrF excimer laser used in the production of integrated circuits is depicted in FIGS. 1, 1A and IB. A cross section of the laser chamber of this prior art laser is shown in FIG. IB. As shown in FIG. 1 A, pulse power system 2 powered by high voltage power supply 3 provides electrical pulses to electrodes 6 located in a discharge chamber 8. Typical state-of-the art lithography lasers are operated at a pulse rate of about 1000 to 2000 Hz with pulse energies of about 10 mJ per pulse. The laser gas (for a KrF laser, about 0.1% fluorine, 1.3% krypton and the rest neon which functions as a buffer gas) at about 3 atmospheres is circulated through the space between the electrodes at velocities of about 1,000 to 2,000 cm per second. This is done with tangential blower 10 located in the laser discharge chamber. The laser gases are cooled with a heat exchanger
11 also located in the chamber and a cold plate (not shown) mounted on the outside of the chamber. The natural bandwidth of the excimer lasers is narrowed by line narrowing module 18 (sometimes referred to as a line narrowing package or LNP). Commercial excimer laser systems are typically comprised of several modules that may be replaced quickly without disturbing the rest of the system. Principal modules include:
Laser Chamber Module,
High voltage power supply module,
High voltage compression head module,
Commutator module,
Output Coupler Module,
Line Narrowing Module,
Wavemeter Module,
Computer Control Module,
Gas Control Module,
Cooling Water Module
Electrodes 6 consist of cathode 6 A and anode 6B. Anode 6B is supported in this prior art embodiment by anode support bar 44 which is shown in cross section in FIG. IB. Flow is counter-clockwise in this view. One corner and one edge of anode support bar 44 serves as a guide vane to force air from blower 10 to flow between electrodes 6 A and 6B. Other guide vanes in this prior art laser are shown at 46, 48 and 50. Perforated current return plate 52 helps ground anode 6B to the metal structure of chamber 8. The plate is perforated with large holes (not shown in FIG. 3) located in the laser gas flow path so that the current return plate does not substantially affect the gas flow. A peaking capacitor bank comprised of an array of individual capacitors 19 is charged prior to each pulse by pulse power system 2. During the voltage buildup on the peaking capacitor, one or two preionizers 56 weakly ionize the lasing gas between electrodes 6A and 6B and as the charge on capacitors 19 reaches aboutl6,000 volts, a discharge across the electrode is generated producing the excimer laser pulse. Following each pulse, the gas flow between the electrodes of about 1 to 2 cm per millisecond, created by blower 10, is sufficient to provide fresh laser gas between the electrodes in time for the next pulse occurring one half to one millisecond later.
In a typical lithography excimer laser, a feedback control system measures the output laser energy of each pulse, determines the degree of deviation from a desired pulse energy, and then sends a signal to a controller to adjust the power supply voltage so that energy of the subsequent pulse is close to the desired energy. These excimer lasers are typically required to operate continuously 24 hours per day, 7 days per week for several months, with only short outages for scheduled maintenance.
Injection Seeding A well-known technique for reducing the band-width of gas discharge laser systems
(including excimer laser systems) involves the injection of a narrow band "seed" beam into a gain medium. In one such system, a laser called the "seed laser" or
"master oscillator" is designed to provide a very narrow laser band beam and that laser beam is used as a seed beam in a second laser. If the second laser functions as a power amplifier, the system is typically referred to as a master oscillator, power amplifier (MOPA) system. If the second laser itself has a resonance cavity, the system is usually referred to as an injection seeded oscillator (ISO) and the seed laser is usually called the master oscillator and the downstream laser is usually called the power oscillator.
Jitter Problems In gas discharge lasers of the type referred to above, the duration of the electric discharge is very short duration, typically about 20 to 50 ns (20 to 50 billions of a second). Furthermore, the population inversion created by the discharge is very rapidly depleted so that the population inversion effectively exists only during the discharge. In these two laser systems, the population in the downstream laser must be inverted when the beam from the upstream laser reaches the second laser. Therefore, the discharges of the two lasers must be appropriately synchronized for proper operation of the laser system. This can be a problem because within typical pulse power systems there are several potential causes of variation in the timing of the discharges. Two of the most important sources of timing variations are voltage variations and temperature variations in saturable inductors used in the pulse power circuits. It is known to monitor the pulse power charging voltage and inductor temperatures and to utilize the data from the measurements and a delay circuit to normalize timing of the discharge to desired values. One prior art example is described in U.S. Patent No. 6,016,325 which is incorporated herein by reference. There in the prior art timing errors can be reduced but they could not be eliminated. These errors that ultimately result are referred to as "jitter".
Lasers Bandwidth A typical KrF laser has a natural bandwidth of about 300 pm (FWHM) centered at about
248 nm and for lithography use, it is typically line narrowed to about 0.6 pm. ArF lasers have a natural bandwidth of about 500 centered at about 193 nm and is typically line narrowed to about 0.5 pm. These lasers can be relatively easily tuned over a large portion of their natural bandwidth using the line narrowing module 18 shown in FIG. 2. F2 lasers typically produce laser beams with most of its energy in two narrow lines centered at about 157.63 nm and 157.52 nm. Often, the less intense of these two lines (i.e., the 157.52 nm line) is suppressed and the laser is forced to operate at the 157.63 nm line. The natural bandwidth of the 157.63 nm line is pressure dependant and varies from about 0.6 to 1.2 pm. An F2 laser with a bandwidth in this range can be used with lithography devices utilizing a catadiophic lens design utilizing both refractive and reflective optical elements, but for an all-refractive lens design the laser beam should have a bandwidth of about 0.1 pm to produce desired results.
Lasers for lithography equipment are very complicated and expensive. Further reduction in bandwidth could greatly simplify the lens design for lithography equipment and/or lead to improved quality of integrated circuits produced by the equipment. Thus, a need exists for lithography lasers (including KrF, ArF and F2 lasers) with substantially reduced bandwidth. Optical Filters
There are many optical filters for selecting out narrow ranges of light in a beam. One such filter is a monochromator in which light passing through a first slit is coUimated with a lens, dispersed spectrally with a dispersing element such as a prism or grating and the dispensed light is then focused to a focal plane with a selected spectral range collected through a slit located at the local plane.
What is needed are techniques to substantially reduce the bandwidth of lithography.
SUMMARY OF THE INVENTION
The present invention provides a narrow band laser system having two laser subsystems. The first laser subsystem is configured to provide a very narrow band pulsed output beam which is used to injection seed the second laser subsystem where the narrow band pulsed seed beam is amplified to produce a narrow band pulsed output beam. A pulse power supply is provided which is specially configured to precisely time the discharges in the two laser subsystem so that the discharges are properly synchronized. Preferred embodiments include a pulse power system with a pulse transformer unit having two sets of transformer cores. A single upstream pulse compression circuit provides high voltage pulses in parallel to the primary windings of all of the cores in both sets. Separate secondary conductors (one passing through one set of cores and the other passing through the other set of cores) provide very high voltage pulses respectively to separate downstream circuits supplying discharge pulses to the electrodes in each of two separate laser chambers. Preferred embodiments include KrF, ArF and F2 systems. In these preferred embodiments, line narrowing may be accomplished within the resonant cavity of the seed laser or the output of the seed laser could be line narrowed using a pre-gain filter.
BRIEF DESCRIPTION OF THE DR WINGS
FIG. 1 is a drawing of a prior art commercial excimer lithography laser.
FIG. 1A is a block diagram showing some of the principal elements of a prior art commercial excimer lasers used for integrated circuit lithography. FIG. IB is a drawing of the laser chamber of the FIG. 1 laser.
FIG. 2 is a block diagram showing features of the present invention.
FIG. 3 is an electrical circuit drawing showing features of a preferred embodiment of the present invention.
FIG. 3 A is a drawing of a pulse transformer.
FIG. 3B is a drawing showing features of FIG. 3A.
FIG. 3C is a modification of the FIG. 3 circuit providing an adjustable delay.
FIG. 3C1 is a B-H curve.
FIG. 3D shows an alternate filter adjustment technique. FIGS. 4 and 5 are black diagrams of F2 laser systems.
FIGS. 6 and 6 A show features of a first grating monochromator.
FIG. 7 shows features of a second grating monochromator.
FIG. 8 shows features of an etalon filter.
FIGS. 9 and 10 are diagrams of power gain stages.
FIGS. 11, 11 A, 11B and 11C show features of a pulse power system.
FIG. 12 shows a pulse energy detector in a feedback control system.
FIG. 13 is a block diagram showing features of a preferred embodiment of the present invention. FIG. 14 is a block diagram showing features of a preferred embodiment of the present invention.
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
Preferred embodiments of the present invention can be described by references to the drawings. A first preferred embodiment of the present invention is shown in FIG. 13. This is an injection seeded power amplifier ArF laser system 200. It comprises two laser systems, a seed laser system 202 and a power amplifier laser system 204. The seed laser system 202 comprised of laser chamber 206 and a line narrowing module 208 comprising a four prism 35X beam expander 210 a tuning mirror 212 and a 10-inch grating 214. The power amplifier laser system comprises once through laser chamber 216.
The seed laser is apertured to produce an output beam with a small cross section preferably 1.5 mm wide and 6 mm high. The system includes lens 218 and lens 219 which together expand the seed laser output beam cross section to 3 mm by 12 mm. This beam of pulses having per pulse energies of about 0.05 mJ is amplified in power amplified laser system to pulse energies of about 10 mJ per pulse.
A small portion about 4 percent of the beam is sampled by partially reflecting mirror 220 and directed to wavemeter 222 which monitors the pulse energy wavelength and bandwidth of the power amplifier output beam. This wavemeter preferably is as described in U.S. Patent No. 5,978,394 or U.S. Patent No. 6,192,064 Bl. Signals from the wavemeter are utilized by controller 224 to adjust charging voltage of a pulse power system which in turn determines the discharge voltage of both laser systems as described in a following section of this specification. The pulse power system is configured as described in that section so that the discharges are precisely tuned to produce the desired output pulse energy. The controller also controls the pivot portion of tuning mirror 212 to provide the desired central wavelength.
Applicants tests have demonstrated that the full width half maximum bandwidth of the seed laser output beam can be reduced with this configuration to less than 0.15 pm as compared to about 0.4 pm for the best state-of-the-art ArF lasers currently used for integrated circuit lithography. With a 1.0 mJ, 0.2 pm seed beam, Applicants project a laser system output beam of 5 to 10 mJ pulse energy and 0.2 pm bandwidth with the configuration shown in FIG. 13. This output beam represents a substantial improvement over the state-of-the-art ArF lithography lasers which operate at about 0.4 pm and 5mJ. 35X beam expander can be replaced with a 45X beam expander and a larger grating is used. Applicants tests have shown that this modification will decrease the bandwidth of the seed laser output beam even further to about 0.15 pm.
Modification to the First Preferred Embodiment There are several modifications to the system described above which can be made to produce somewhat different performance. One variation is shown in FIG. 14. In this variation lens 219 is removed and replaced by lens 219A located downstream of the output of power amplifier 216. This change permits the seed beam to expand as it is amplified so as to produce a more uniform power density in the active portion of the discharge region.
Pulse Timing Preferred embodiments of the present invention utilize a pulse power system configured to control the timing of the discharge of the two laser systems to produce desired output pulse laser beams. These embodiments make use of a fractional turn pulse transformer design similar to fractional turn pulse transformer described in U.S. Patent No. 5,142,166. In these embodiments the portion of the pulse power circuits for the two laser systems are separate downstream of the pulse transformer system and portions of the pulse power circuits upstream of the pulse transformer system is common for both laser systems.
FIG. 3 shows an electrical outline of the principal elements of a preferred pulse power system. The portion of the system upstream of the pulse transformer system is very similar to the circuit shown in FIG. 11 which is described in detail U.S. in U.S. Patent No. 6,151,346 (hereby incorporated by reference). A single bank of capacitors define a charging Co capacitor bank 42. Electrical pulses are generated by the closing of switch Si 46 which consists of two IGBT switches mounted in parallel Lo inductor 48 holds off current flow through St so it can close without any deterioration to charge up C-* capacitor bank 52. Li saturable inductor holds off substantial current flow through pulse transformer system 56 until inductor Li saturates at which time the primary turns of fractional turn pulse transformer system 56 is pulsed with a short about 0.5 microsecond
1000 volt pulse. In this embodiment, transformer system 56 is comprised of two separate transformer units 56A and 56B which in this case are virtually identical.
Each of the pulse transformer unit 56 is similar to the pulse transformer described in U.S.
Patent No. 6,151,346. The pulse transformer units of the present embodiment has only a single turn in the secondary winding and 23 induction units. The transformer as configured as an auto transformer as shown in FIG. 3B to provide a 1:24 step-up ratio. Each of the 23 induction units comprise an aluminum spool 56A having two flanges (each with a flat edge with threaded bolt holes) which are bolted to positive and negative terminals on printed circuit board 56B as shown along the bottom edge of FIG. 3A. (The negative terminals are the high voltage terminals of the twenty three primary windings.) Insulators
56C separates the positive terminal of each spool from the negative terminal of the adjacent spool. Between the flanges of the spool is a hollow cylinder 1 1/16 inches long with a 0.875 OD with a wall thickness of about 1/32 inch. The spool is wrapped with one inch wide, 0J mil thick Metglas™ 2605 S3 A and a 0.1 mil thick mylar film until the OD of the insulated Metglas™ wrapping is 2.24 inches. A prospective view of a single wrapped spool forming one primary winding is shown in FIG. 5 of U.S. Patent No.
6,151,346.
The secondary of each transformer is a single OD stainless steel rod mounted within a tight fitting insulating tube of Teflon® (PTFE). The transformer units are in four sections as shown in FIG. 3A. The low voltage end of stainless steel secondary shown as 56D in FIG. 3A is tied to the primary HV lead on printed circuit board 56B at 56E, the high voltage terminal is shown at 56F. As a result, the transformer assumes an auto- transformer configuration and the step-up ratio becomes 1:24 instead of 1:23. Thus, an approximately -1400 volt pulse between the + and - terminals of the induction units will produce an approximately -35,000 volt pulse at terminal 56F on the secondary side. A 1000 volt primary pulse produces a pulse on the secondary sides of both transformers of about 24,000 V. This single turn secondary winding design provides very low leakage inductance permitting extremely fast output rise time. The general configuration of the pulse transformer system is shown in FIG. 3B. As indicated in this figure, the primary high voltage pulse of about 1000N produced by the upstream portion of the pulse power system arrives at each pulse transformer at exactly the same time and as the corresponding output pulse of each of the transformers will therefore be substantially identical in shape and time. Applicants estimate that the jitter at the output of the two transformer will be less than one nanosecond.
As indicated in FIG. 3 in this embodiment the portion of pulse power circuits downstream of the pulse transformers are separate but substantially equal so that the jitter at electrodes 83 and 84, A and B, is estimated to be less than 3 ns. Therefore, the gain medium in both lasers is produced at the same time with a variation of less than about 3 ns. The duration of each of the pulses is about 20 to 50 ns so that the laser pulse produced in the first laser is properly amplified in the second laser. Preferably, the circuit is provided with a bias circuit to bias all saturable inductors so that they are reverse conducting prior to each pulse. The bias circuit is designed so that during a short period immediately after the pulse the saturable inductors remain forward conducting so that pulse energy reflected from the electrodes can be recovered as explained in detail in U.S. Patent No. 5,729,562.
In preferred embodiments of this invention, the output coupler of the first laser is located about one foot downstream of the input window of the second laser. Therefore, for this reason or for other reasons, it may be desirable to delay the discharge of the second laser as compared to the first laser. Since the electrical pulse travels through a good conductor at a rate of about 1.0 ns/20 cm, this can easily be accomplished by making a conductor carrying the pulse of the second laser longer (for example, by 20 to 40 cm) than a corresponding conductor for the first laser.
Adjustable Delays
Another approach to control the timing of the discharge in one laser relative to the other is to insert a saturable inductor in the circuit shown in FIG. 3 in one of the branches downstream of transformer 56 such as at location 63 shown in FIG. 3C. This saturable inductor is fitted with an adjustable forward bias. The forward bias which is applied is chosen so that the time to complete the forward saturation of the inductor is approximately equal to the desired delay time. The delay time is a function of the number of turns in the saturable inductor, the cross-section of its magnetic core and magnetic flux swing ΔB of the inductor. Since the required delay is very small the number of turns can be one and the core can be small (such as 2 inch diameter) and the flux swing ΔB can also be small as indicated in FIG. 3C1. By adjusting the bias the relative delay can be adjusted. The delay control could be incorporated into a feedback loop design to control jitter. Since the delay expected to be required for an oscillator / amplifier configuration is small (on the order of ns or 10' s of ns), the delay reactor can be made small. In addition, the core material can be selected to minimize the losses introduced in the circuit, again since the volt-second requirement is likely to be much smaller than that required in the power pulse compression circuit. Another technique for providing for an adjustable delay is shown in FIG. 3D. In this case, a conductor 101 carrying the pulse to one of the lasers is arranged in a single loop coil 102 and a rod 103 having high permeability arranged to be movable into and out of the coil. The rod can be positioned with a fast drive such as a stepper motor or a piezoelectric driver.
Other Pulse Transformer Configurations Many variations of the pulse transformers configuration shown in FIG. 3B are possible. The preferred output voltage for the two laser systems may not be the same. If different voltages are needed this can be easily accomplished by providing a smaller or larger number of induction units for one of the transformers relative to the other one. Also, switches could be included in one of the transformers to cut out some of the induction units to reduce the discharge voltage output of that transformer relative to the other one. Taps could be provided between any of the four transformer sections of either transformer to take off the secondary voltage at reduced levels. INJECTION SEEDED F2 LASER SYSTEM
Seed Laser FIGS. 4 through 11D describe various techniques for designing and operating injection seeded F2 laser systems. A preferred first F2 injection seed light source may be a conventional F2 laser, using either a plane-parallel optical resonator, or an unstable resonator configuration. The pulse power supply for both laser subsystems is preferably provided utilizing one of the techniques described above. This assures that the timing of the discharge of each laser subsystem is adequately synchronized. In a preferred F2 embodiment the seed laser beam is filtered downstream of the seed laser. The seed laser preferrably will generate enough energy such that, after filtering, 10 - 100 μJ of narrowband energy is available for seeding the F2 power gain stage. An unstable resonator will produce a lower divergence, more spatially coherent beam than a stable resonator, which may be of some advantage in coupling energy through the injection spectral filter. For instance, if the filter is a simple monochromator, a lower divergence beam will be more easily focused down to the input slit of the monochromator. Another design option is to operate the first F2 light source laser at relatively low pressure (~ 100 - 200 kPa). This produces a substantially reduced spectral width : 0.3 - 0.6 pm. A lower spectral width means a greater fraction of the energy entering the post gain filter will make it through the filter. The raw output energy from the first F2 light source will be much lower, but this may not be a practical disadvantage because the maximum energy that the injection filter can handle is similarly limited.
A conventional F2 laser for use as the first F2 light source in a preferred embodiment is a standard KrF lithography laser system modified for operation as a F laser. These KrF lithography lasers are well known and there are more than 1,000 of these units operating today in integrated circuit fabrication plants as light sources for integrated circuit lithography machines. These lasers produce laser pulses at rates in the range of 1000 to 2000 pulses per second and are available from suppliers such as Cymer, Inc. with offices in San Diego, California. These lithography lasers are described in detail in many patents such as U.S. Patent No. 5,991,324 and U.S. Patent No. 6,128,323 both of which are incorporated herein by reference. The major modifications needed for operation as an F2 laser are to change the gas mixture to about 0.1 percent fluorine and the remainder helium (although a neon or a combination of helium and neon could be used) and preferably the upper range of the discharge voltage is increased from about 26,000 volts to about 36,000 volts. A basic prototype F2 laser system used for both the first F2 light source and the power gain stage is described below in the section entitled "F2 Laser System Designs".
That section describes the significant improvements to the prior art KrF laser system to produce an F2 laser.
PRE-POWER GAIN FILTER
A preferred conventional grating-monochromator pre-power gain filter is described by reference to FIG. 6. This filter, when used with a free-running F2 laser as the master oscillator, preferably must slice out a 0.1 pm bandwidth portion of the free-running spectrum from the master oscillator, and be capable of producing the 10 - 100 μJ of narrow-band energy required by the following amplifier stage. This first filter embodiment shown in FIG. 6 is that of a conventional grating monochromator. Light from the master oscillator is first focussed down onto an input slit 50. Light passing though the input slit is coUimated preferably by a curved mirror 52, which may be a simple spherical mirror, or an off-axis paraboloid, and the coUimated light is directed to a grating 54. The grating is a high dispersion type (e.g. an echelle grating) chosen to disperse light in the 157 nm wavelength range. The grating is in the Lithrow configuration. Light at a selected very narrow range which is reflected back along the beam path 54 is re-imaged on an exit slit 57 with the aid of beam splitter 56. The various geometric and optical parameters of the arrangement (i.e. slit widths, grating dispersion, curved mirror focal length) determine the bandwidth of the light leaving the exit slit. One design problem that must be overcome is the high peak intensities that are reached at the input and exits slits when one attempts to couple the desired amount of energy through the monochromator. One method to handle these high intensities is to use refractive slits, i.e. knife edge wedges that refract the unwanted light into another direction, without absorbing the energy. Such a slit arrangement is shown in FIG. 6A.
In addition to its function as a filter, the arrangement of FIG. 6 includes an additional beamsplitter 58 and a linear detector array 60 placed at an exit image plane. This addition solves an important remaining problem: how to maintain the (tunable) injection filter at the desired wavelength. If the grating angle is in error by more than a few 10's of micro- radians, the seed beam will miss the exit slit, and there will be no narrow-band energy to lock the following power amplifier stage. If the angle is very slightly incorrect the amplified spectrum will not be at the desired wavelength. Fortunately, the monochromator can, in essence, monitor itself. The image formed by the grating and curved mirror is the dispersed spectrum of the light entering the monochromator. The second beam splitter produces two identical images (spectra), one at the exit slit, and one at the linear detector array. The linear detector array senses the relatively broad spectrum from the free-running master oscillator and converts it into a video signal representative of the spectral intensity at each point on the array. Since the free-running wavelength is stable and well-known, it serves as a calibration standard for the monochromator. A controller 66 reads out the linear detector array, and adjusts the grating angle so as to place the image of the spectrum centered at a desired point on the array, near the center for example. In this way the monochromator is self-stabilized to the free-running spectrum of the master oscillator. Since the exit slit and linear array are basically duplicate image planes, the exit slit position corresponds to a particular position, and hence wavelength, on the linear array. Therefor, with the free-running spectrum from the master oscillator as a spectral reference, the wavelength of the light leaving the exit slit can be precisely determined.
One method for calibrating this arrangement is to place a beamsplitter 62 in the path of the beam exiting the monochromator and to monitor the beam energy with energy detector 64. Such a detector is desirable in any event, since the energy of the injection seed needs to be monitored.
Calibration A calibration sequence would proceed as follows: (1) With the grating at a starting angle, the laser is fired and the output energy from the exit slit is monitored, along with the spectral image falling on the linear array. The peak of the spectrum is determined in terms of the position, in pixels, on the array. (2) The grating angle is incremented and the measurements are repeated. (3) After the grating angle is scanned though a range, the resulting data is examined. The position of the spectrum on the array (in pixels) where the output energy maximizes corresponds to the equivalent position of the slit.
Once this calibrated position is determined, the known dispersion of the monochromator can be used to retune the grating to other wavelengths. For instance, suppose the monochromator dispersion is 0.1 pm/pixel, and further suppose the calibrated position of the exit slit is pixel 300. If the desired wavelength of the output is 157.6299 nm (157,629.9 pm), the center of the free-running spectrum, then the grating angle is adjusted so that the center of the image falls at pixel 300. If the desired wavelength is +0.2 pm away from the center (157.630 lnm), then the grating would be moved so that the center of the image would fall at pixel 302. A further refinement is to include the pressure of the master oscillator in the calibration and subsequent use of the monochromator, since the center of the free-running spectrum is pressure dependent. This pressure dependence must be included in the calibration, especially if the pressure of the master oscillator is allowed to vary significantly. We have determined that the center wavelength of the free- running laser has a pressure shift coefficient in the range of about 1 to 2 frn/kPa, when helium is used as a buffer. For any given pressure, a good estimate of the wavelength is therefor 157.6309 + 0.00000192* P nm, where P = pressure in kPa. Other pressure shift coefficients can be used if other buffer gasses are used (neon for instance, or mixtures of helium and neon).
Modified Grating Monochromator An alternate method for producing the narrow-band light is with a modified grating monochromator as shown in FIG. 7. This filter filters the output beam of a master oscillator which produces a well-collimated, nearly diffraction limited coherent beam, and in this case we eliminate the entrance slit of the monochromator.
A beam expander 70 is used to reduce the divergence from the master oscillator and to physically match the size of the beam from the master oscillator to grating 54. The dispersed light from the grating is focussed via a curved mirror (or lens) to an exit slit 72 where the desired wavelength is selected. The operation of the linear detector array 60 and controller 66 is the same as previously described. The advantage of this arrangement is that it eliminates the need for an entrance slit and the associated problems with high peak intensities. This arrangement has a disadvantage in that the pointing stability of the master oscillator is now a factor in the position of the image on the array, and hence the wavelength selection process. For slowly varying changes in the input angle from the master oscillator, the controller can retune the grating and keep the wavelength constant. Etalon Filter
An etalon 78 can also be used as a bandpass filter as shown in FIG. 8. As with the monochromator filters, it is desirable that the etalon be self -referenced to the free-running spectrum of the master oscillator, which is used as an atomic standard. The beam from the master oscillator is first expanded with beam expander 70, both to lower its divergence and to reduce the power density on the etalon. After expansion, the beam passes through a special "partial diffuser" 74, an optical element which transmits most of the light unaltered, but scatters a small faction into a range of angles. Examples of this are diffractive optics with low diffraction strength, or very lightly and finely ground optical flats. The light then passes through the etalon at near normal incidence. The etalon's bandpass characteristics are determined by its free spectral range (FSR) and finesse. For instance, an etalon with an FSR of 2 pm and a finesse of 20 will have a bandpass of 0.1 pm FWHM. The etalon will then transmit a 0.1 pm slice of the spectrum from the free- running master oscillator. As with the monochromator, it may be advantageous to operate the master oscillator at low pressure, and hence reduced bandwidth, in order to limit the power loading on the etalon. In addition, a narrower starting spectrum will reduce the amount of energy in the adjacent transmission orders of the etalon (± 1 FSR from the central wavelength). After passing through the etalon, a lens 76 (or curved mirror) focuses the light to a point, where an aperture is placed. A portion of the beam is split off by beam splitter 80 and monitored by a photodiode array 82 which provides center wavelength and bandwidth signals to controller 66 which uses this information to control the etalon 78. The purpose of the aperture is to block all light except the on-axis, non- diffused component of the beam. This light, which is narrow-band, is then sent on to the power amplifier stage. A beam splitter and optical detector follows the aperture, to monitor the energy leaving the injection filter.
In general, the central wavelength of the etalon's bandpass will not align with the center of the spectrum of the free-running master oscillator. The etalon needs to be tuned. Four methods are possible, depending on whether the etalon is a solid plate type or an air- spaced type. For solid etalons, the etalon can be tilted with respect to the incoming beam, or the temperature of the etalon can be varied, which effectively changes the optical thickness of the plate. For air-spaced etalons, the angle can be varied, the plate spacing can be varied (by PZT actuators, for instance), or the index of refraction of the gas between the plates can be varied by changing the density of the gas.
In a preferred embodiment, the etalon is an air-spaced type which is enclosed in a pressure-tight housing 84 as indicated in FIG. 8. A pressure controller is used to vary the pressure of the gas within the housing (at constant temperature), thereby pressure tuning the etalon. Since the amount of tuning required is very small (about ± 0.2 to ± 0.5 pm), the pressure change that is needed is also very small, about ± 3 to ± 8 torr with nitrogen as the gas. This can be achieved either by changing the volume of the (sealed) housing, or by actively introducing or withdrawing gas from a suitable supply. As the etalon is pressure tuned, the output intensity will alternately increase and extinguish as the bandpass wavelength sweeps through the spectrum from the free-running master oscillator.
Control over the tuning of the etalon is attained by including additional optical elements that turn the etalon into its own etalon spectrometer. An additional beamsplitter is located prior to the exit aperture, and forms a second focal plane of the lens. In this focal plane (as in the first), the intensity distribution consists of an intense spot at the center of focus plus a much weaker conventional etalon ring pattern. The intense spot is formed by the non-diffused portion of the beam passing through the etalon, whereas the etalon ring pattern is formed by the diffused portion of the beam. The intense central spot is not used here and is blocked with a beam stop 81. A linear detector array 82 is then placed in the focal plane to read out the etalon ring pattern. This arrangement is very similar to the design of current wavemeters used in lithographic lasers. For a given optical arrangement, there is a direct relationship between the diameters of the etalon rings and the central wavelength of the etalon bandpass.
Calibration of the arrangement is done in a manner similar to the procedure previously described for the monochromator filter. A calibration sequence would proceed as follows: (1) With the etalon pressure- tuned to a starting wavelength, the laser is fired and the output energy from the exit aperture is measured, along with the etalon ring pattern falling on the linear array. The diameter of the innermost, fully formed ring is determined. (2) The pressure controller increments the pressure in the etalon, and the measurements are repeated. (3) After the etalon is pressure-tuned through one free- spectral range, the resulting data is examined. The diameter of the innermost ring where the output energy maximizes corresponds to the condition where the bandpass of the etalon is exactly tuned to the peak of the free-running spectrum from the master oscillator which is pressure dependent.
Once this calibrated diameter is determined, the wavelength of the etalon bandpass filter can be stabilized by varying the pressure in the etalon so as to maintain this diameter. As a further refinement, the etalon ring pattern can be converted directly into a "wavelength" by employing the same non-linear etalon equations used in the lithographic wavemeters. This allows the bandpass function to be detuned from the peak of the master oscillator spectrum by a known amount. A further refinement is to include the pressure of the master oscillator in the calibration and subsequent use of the etalon, as has been previously described.
Tuning Normally the narrow spectral band (of about 0.1 pm or less) chosen for operation of the laser system will be the narrow band meeting desired bandwidth specifications with the maximum output pulse energy. However, a limited amount of wavelength tuning is possible with the pregam filters described above. Applicants expect that a tuning range of at least about 1.2 pm can fairly easily be achieved. Additional tuning is feasible with some significant compromise of output pulse energy. The tuning range is a function of laser gas pressure as indicated above. Therefore a longer overall range can be achieved by adjusting the pressure in the laser.
POWER GAIN STAGE
Two preferred power gain stages can be described by reference to FIGS. 9 and 10. i
Power Oscillator The power gain stage can be configured as a power oscillator as shown in FIG. 9. Many different resonators can be used for the PO design, depending on the desired output. In a preferred embodiment, the resonator is an off-axis hybrid unstable resonator, formed by two split-coated mirrors, all as shown in FIG. 9. The injected seed beam 90 is aligned to a central axis along the top of an unstable resonator 92, and first travels through a 50 % partial reflector 93A. The rear resonator optic 94 is a zero power meniscus type, which does not disturb the coUimation of the injected beam. The injected beam fills the Fresnel core of the resonator, establishing control over the intercavity field (the Fresnel core in this case is the volume formed between 50% R mirror 93A and 100% R mirror 94A). After propagating with amplification to the front optic, the beam is reflected from the 100 % reflective, convex surface. The beam expands and is amplified as it travels to the rear optic, where a portion reflects off of the 100% reflective, concave surface 93B and a portion reflects off surface
93A. This re-collimates the beam , which is further amplified by a third pass through the gain. The lower portion 94B of the output coupler is anti-reflective coated, allowing the beam to exit with minimal loss. As with the rear optic, the front optic is a zero-power meniscus type, to preserve the coUimation of the output beam. This type of a resonator forms a power oscillator because the 50% and 100% reflective surfaces provide feedback into the Fresnel core of the resonator. The advantage of this type of resonator is (1) there is no central obscuration or hole in the beam, and (2) it requires very little seed energy to lock the power oscillator to the seed.
Power Amplifier A power gain stage in the form of a power amplifier is shown in FIG. 10. In this case the resonator is similar to the one shown in FIG. 9 except the feedback has been eliminated by changing the 50% reflective surface 93A to an anti-reflective surface. This configuration produces an off-axis, multipass power amplifier.
F2 Laser System Designs Several prototype F2 laser systems have been built and tested by Applicants and their fellow workers to serve as gain media for both as the first F2 light source, and as the power gain stage.
These systems are largely based on current production KrF and ArF lasers incorporating several important improvements over prior art excimer laser systems, utilizing a high efficiency chamber and solid-state pulsed power excitation. The discharge is corona pre- ionized to minimize gas contamination. The entire optical beam path is nitrogen purged to avoid light absorption by oxygen and to avoid damage to optical components. AU resonator optics were external to the angled chamber window equipped laser chamber.
The gas mixture was 0.1% fluorine in 4 atmospheres of helium and the electrode gap was reduced to 10 mm.
In these prototype units, for both the first F2 light source and the power gain stage, a modified pulse power system is used and a circuit diagram for the system is shown in FIG. 11 and in FIGS. 2 and 3. The major difference between the pulse power system for these embodiments and corresponding systems for prior art KrF lasers is the pulse transformer 56 which for the F2 laser provides higher output voltage and, as described above, the portion of the circuit upstream of the transformer is a single circuit and the portion downstream of the transformer is a divided circuit. In this pulse transformer the single four-section stainless steel rod (described in U.S. Patent No. 6,128,323 referred to above) which functions as a secondary winding is replaced by a transformer secondary conductor consisting of an inner cylindrical rod and two coaxial tubes all connected in series and insulated from each other as shown in FIGS. 11 A, 11B and llC. The secondary conductor consists of two coaxial assemblies (the cross-section of which are depicted in FIGS. 1 IB and 11C) connected with bus bar as shown at 302 and HV cable as shown at 304. FIG. 11D shows the same cross-sections as 11B and 11C and also the layers 306 of Metglas™ and mylar film which is wrapped around the cylinder portion 308 of the spools forming the primary winding. Also identified in FIG. 1 ID are the central wire 310 and hollow cylindrical conductors 312 and 314 forming the secondary portion of the pulse transformer. The Metglas™ and mylar layers are not shown in FIGS. 11 A, 1 IB and 1 lC. A current pulse having a voltage peak of about 1,000 volts (as indicated at 316) will produce a pulse at the secondary HV terminal of about 36,000 volts as indicated at 318 in FIG. 11 A. Thus, each of the two pulse transformer sections feeding the two lasers, is comprised of 12 induction units (instead of the 23 shown in FIG. 3HB). However, the three secondary conductors passing through the 12 induction units produce voltage amplification of 36.
Coupling between the primary cylinders and the three coaxial secondary conductors is provided by wrappings of Metglas™ and mylar film as described above with reference to FIG. 8E. In this embodiment an extra stage of compression (with one additional capacitor bank Cp-1) is provided. The capacitor banks in this embodiment have the following values:
Co = about 12.1 μF
= about 12.4 μF
Cp-2 = about 8.82 nF
Cp-1 = about 8.4 nF
Cp = about 10 nF
The modified pulse power system in this prototype embodiment produces an output rise time of about 80 ns into the peaking capacitor bank. The step-up ratio of the pulse transformer is 36X (as compared to the 24X in the embodiment described in detail above). This permits the laser to operate at substantially higher voltages with correspondingly lower F2 concentrations as compared to the unmodified pulse transforms. Applicant has determined that the higher voltage operation improves discharge stability, and permits higher repetition rates. As explained above, in this embodiment two separate transformers are provided each of which are supplied by a primary current from a common source as shown in FIG. 3B but each of the transformers are configured a shown in FIGS. 11A, B, C and D to provide a 36X step up instead of the 24X as shown in FIG. 3B.
Post Output Filter As indicated above, the output of power gain stage of preferred embodiments of the present invention will have ultraviolet bandwidths of about 0.1 pm or less with a line center within the nominal F2 157.63 nm line which covers a spectral range of about ± 0.5 pm around the nominal wavelength. As indicated in the following section, a small amount of light energy in other spectral ranges are produced in F2 lasers especially red and infrared light when helium is used. If this red light is a problem, it can be easily eliminated with well know optical filters designed to transmit 157 nm UV light and absorb or reflect away (not back into the laser) the red light. Also, a post output filter of one of the types described above could be added to further line narrow the output beam in the UN range. However, when used as a post output filter, the components of the filter need to be designed to handle a much higher energy beam. Although the present invention has been described in terms of specific embodiments, the reader should understand that the scope of the invention is to be delimited by the appended claims and their legal equivalents.

Claims

CLAIMSWE CLAIM:
1. An injection seeded narrow band gas discharge pulse laser system comprising:
A) a first discharge laser subsystem comprising:
1) a first laser chamber containing a laser gas, and a first set of electrodes defining a first discharge region in which electric discharges produce a gain medium in said laser gas for producing a first laser beam having a bandwidth, and
2) a line narrowing device for reducing the bandwidth of said first laser beam to produce a narrow band first laser subsystem output beam;
B) a second discharge laser subsystem comprising: a second laser chamber containing a circulating laser gas and a second set of electrodes defining a second discharge region in which electric discharges produce a gain medium for amplifying said first laser subsystem output beam; and
C) a pulse power system comprising:
1) a pulse transformer system comprising: a) a first pulse transformer comprising: i) a first plurality of transformer cores defining a number of cores N, each core having a primary winding, ii) at least one first secondary conductor, passing through all of said first plurality of cores, b) a second pulse transformer comprising: i) a second plurality of cores defining a number of cores M, each core having a primary winding; ii) at least one second secondary conductor, passing through all of said second plurality of cores,
2) a high voltage pulse power source for producing high voltage electric pulses of relatively long duration,
3) an upstream electrical pulse compression circuit for compressing said high voltage electrical pulses to produce compressed high voltage pulses of relatively short duration, said upstream circuit being configured to apply said compressed high voltage pulses in parallel: a) to said primary winding of each of said first plurality of transformer cores and b) to said primary winding of each of said second plurality of transformer cores, to produce very high voltage first pulses at an output on said first secondary conductor and to produce very high voltage second pulses at an output on said second secondary conductor,
4) a first downstream electrical circuit for applying said first very high voltage pulses to said first set of electrodes to create discharges in said first discharge region, and
5) a second downstream electrical circuit for applying said second very high voltage pulses said second set of electrodes to pulse to create discharges in said second discharge region, wherein said first laser subsystem output beam is amplified in said second discharge region to produce an amplified laser beam at an output of said second discharge laser subsystem.
2. A laser system as in Claim 1 wherein N is equal to M.
3. A laser system as in Claim 1 wherein N is not equal to M.
4. A laser system as in Claim 1 wherein N and M are each approximately equal to
23.
5. A laser system as in Claim 1 wherein said first secondary conductor is a single conductor and said second secondary conductor is a single conductor.
6. A laser system as in Claim 1 wherein said at least one first secondary conductor is a plurality of coaxial conductors and said at least one secondary conductor is a plurality of coaxial conductors.
7. A laser system as in Claim 1 and further comprising a pulse delay means for delaying one of said very high voltage first pulses and very high voltage second pulses with respect to the other.
8. A laser system as in Claim 7 wherein said pulse delay means comprises an elongation of a conduction path.
9. A laser system as in Claim 7 wherein said delay means comprises an adjustable bias on a saturable indicator.
10. A laser as in Claim 1 and further comprising a saturable inductor filtered with an adjustable forward bias.
11. A laser as in Claim 1 and further comprising means for detecting jitter and a jitter control feedback loop.
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DE60231798T DE60231798D1 (en) 2001-04-09 2002-04-02 INJECTION SYNCHRONIZED LASER WITH PRECISE TIME CONTROL
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US09/829,475 US6765945B2 (en) 1999-09-27 2001-04-09 Injection seeded F2 laser with pre-injection filter
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US09/848,043 US6549551B2 (en) 1999-09-27 2001-05-03 Injection seeded laser with precise timing control
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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1378035A1 (en) * 2001-04-09 2004-01-07 Cymer, Inc. Injection seeded f 2? laser with pre-injected filter
EP1378038A1 (en) * 2001-04-09 2004-01-07 Cymer, Inc. Injection seeded f2 laser with wavelength control

Families Citing this family (94)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6567450B2 (en) 1999-12-10 2003-05-20 Cymer, Inc. Very narrow band, two chamber, high rep rate gas discharge laser system
US6865210B2 (en) * 2001-05-03 2005-03-08 Cymer, Inc. Timing control for two-chamber gas discharge laser system
US7856044B2 (en) 1999-05-10 2010-12-21 Cymer, Inc. Extendable electrode for gas discharge laser
US6625191B2 (en) * 1999-12-10 2003-09-23 Cymer, Inc. Very narrow band, two chamber, high rep rate gas discharge laser system
US6549551B2 (en) * 1999-09-27 2003-04-15 Cymer, Inc. Injection seeded laser with precise timing control
US7009140B2 (en) * 2001-04-18 2006-03-07 Cymer, Inc. Laser thin film poly-silicon annealing optical system
US7167499B2 (en) * 2001-04-18 2007-01-23 Tcz Pte. Ltd. Very high energy, high stability gas discharge laser surface treatment system
US7061959B2 (en) * 2001-04-18 2006-06-13 Tcz Gmbh Laser thin film poly-silicon annealing system
US7439530B2 (en) 2005-06-29 2008-10-21 Cymer, Inc. LPP EUV light source drive laser system
US20050259709A1 (en) 2002-05-07 2005-11-24 Cymer, Inc. Systems and methods for implementing an interaction between a laser shaped as a line beam and a film deposited on a substrate
US7916388B2 (en) * 2007-12-20 2011-03-29 Cymer, Inc. Drive laser for EUV light source
US7465946B2 (en) * 2004-03-10 2008-12-16 Cymer, Inc. Alternative fuels for EUV light source
US7372056B2 (en) * 2005-06-29 2008-05-13 Cymer, Inc. LPP EUV plasma source material target delivery system
US7897947B2 (en) * 2007-07-13 2011-03-01 Cymer, Inc. Laser produced plasma EUV light source having a droplet stream produced using a modulated disturbance wave
US7378673B2 (en) * 2005-02-25 2008-05-27 Cymer, Inc. Source material dispenser for EUV light source
US7476886B2 (en) * 2006-08-25 2009-01-13 Cymer, Inc. Source material collection unit for a laser produced plasma EUV light source
US7928416B2 (en) 2006-12-22 2011-04-19 Cymer, Inc. Laser produced plasma EUV light source
US7843632B2 (en) * 2006-08-16 2010-11-30 Cymer, Inc. EUV optics
US7491954B2 (en) * 2006-10-13 2009-02-17 Cymer, Inc. Drive laser delivery systems for EUV light source
US7598509B2 (en) * 2004-11-01 2009-10-06 Cymer, Inc. Laser produced plasma EUV light source
US7830934B2 (en) * 2001-08-29 2010-11-09 Cymer, Inc. Multi-chamber gas discharge laser bandwidth control through discharge timing
US8653437B2 (en) 2010-10-04 2014-02-18 Cymer, Llc EUV light source with subsystem(s) for maintaining LPP drive laser output during EUV non-output periods
US7671349B2 (en) * 2003-04-08 2010-03-02 Cymer, Inc. Laser produced plasma EUV light source
US6798812B2 (en) 2002-01-23 2004-09-28 Cymer, Inc. Two chamber F2 laser system with F2 pressure based line selection
US8654438B2 (en) 2010-06-24 2014-02-18 Cymer, Llc Master oscillator-power amplifier drive laser with pre-pulse for EUV light source
US20030219094A1 (en) * 2002-05-21 2003-11-27 Basting Dirk L. Excimer or molecular fluorine laser system with multiple discharge units
WO2004012308A2 (en) * 2002-07-31 2004-02-05 Cymer, Inc. Control system for a two chamber gas discharge laser
US20040202220A1 (en) * 2002-11-05 2004-10-14 Gongxue Hua Master oscillator-power amplifier excimer laser system
US7308013B2 (en) 2002-11-05 2007-12-11 Lambda Physik Ag Excimer or molecular fluorine laser system with precision timing
US6987790B2 (en) * 2003-02-14 2006-01-17 Lambda Physik Ag Excimer or molecular fluorine laser with several discharge chambers
US7217941B2 (en) * 2003-04-08 2007-05-15 Cymer, Inc. Systems and methods for deflecting plasma-generated ions to prevent the ions from reaching an internal component of an EUV light source
WO2004095661A1 (en) * 2003-04-22 2004-11-04 Komatsu Ltd. 2-stage laser device for exposure
US7277188B2 (en) * 2003-04-29 2007-10-02 Cymer, Inc. Systems and methods for implementing an interaction between a laser shaped as a line beam and a film deposited on a substrate
US7366213B2 (en) * 2003-05-19 2008-04-29 Lambda Physik Ag MOPA excimer or molecular fluorine laser system with improved synchronization
US20060146906A1 (en) * 2004-02-18 2006-07-06 Cymer, Inc. LLP EUV drive laser
US7087914B2 (en) * 2004-03-17 2006-08-08 Cymer, Inc High repetition rate laser produced plasma EUV light source
US7196342B2 (en) * 2004-03-10 2007-03-27 Cymer, Inc. Systems and methods for reducing the influence of plasma-generated debris on the internal components of an EUV light source
US7522650B2 (en) * 2004-03-31 2009-04-21 Cymer, Inc. Gas discharge laser chamber improvements
US7006547B2 (en) * 2004-03-31 2006-02-28 Cymer, Inc. Very high repetition rate narrow band gas discharge laser system
US7282666B2 (en) * 2004-05-07 2007-10-16 Micron Technology, Inc. Method and apparatus to increase throughput of processing using pulsed radiation sources
US7355191B2 (en) * 2004-11-01 2008-04-08 Cymer, Inc. Systems and methods for cleaning a chamber window of an EUV light source
US7109503B1 (en) * 2005-02-25 2006-09-19 Cymer, Inc. Systems for protecting internal components of an EUV light source from plasma-generated debris
US7482609B2 (en) * 2005-02-28 2009-01-27 Cymer, Inc. LPP EUV light source drive laser system
US7365349B2 (en) * 2005-06-27 2008-04-29 Cymer, Inc. EUV light source collector lifetime improvements
US7633989B2 (en) 2005-06-27 2009-12-15 Cymer, Inc. High pulse repetition rate gas discharge laser
US7180083B2 (en) * 2005-06-27 2007-02-20 Cymer, Inc. EUV light source collector erosion mitigation
US7394083B2 (en) 2005-07-08 2008-07-01 Cymer, Inc. Systems and methods for EUV light source metrology
JP4677857B2 (en) 2005-08-23 2011-04-27 ヤマハ株式会社 Musical instrument member or musical instrument and method for producing the same
US7679029B2 (en) * 2005-10-28 2010-03-16 Cymer, Inc. Systems and methods to shape laser light as a line beam for interaction with a substrate having surface variations
US7317179B2 (en) * 2005-10-28 2008-01-08 Cymer, Inc. Systems and methods to shape laser light as a homogeneous line beam for interaction with a film deposited on a substrate
US7715459B2 (en) * 2005-11-01 2010-05-11 Cymer, Inc. Laser system
US7885309B2 (en) 2005-11-01 2011-02-08 Cymer, Inc. Laser system
US7630424B2 (en) * 2005-11-01 2009-12-08 Cymer, Inc. Laser system
US20090296758A1 (en) * 2005-11-01 2009-12-03 Cymer, Inc. Laser system
US7746913B2 (en) 2005-11-01 2010-06-29 Cymer, Inc. Laser system
US20090296755A1 (en) * 2005-11-01 2009-12-03 Cymer, Inc. Laser system
US7643529B2 (en) 2005-11-01 2010-01-05 Cymer, Inc. Laser system
US7999915B2 (en) * 2005-11-01 2011-08-16 Cymer, Inc. Laser system
KR101238739B1 (en) * 2005-11-01 2013-03-04 사이머 인코포레이티드 Laser system
US7920616B2 (en) * 2005-11-01 2011-04-05 Cymer, Inc. Laser system
US7778302B2 (en) * 2005-11-01 2010-08-17 Cymer, Inc. Laser system
US7453077B2 (en) * 2005-11-05 2008-11-18 Cymer, Inc. EUV light source
US7307237B2 (en) * 2005-12-29 2007-12-11 Honeywell International, Inc. Hand-held laser welding wand nozzle assembly including laser and feeder extension tips
US7822084B2 (en) * 2006-02-17 2010-10-26 Cymer, Inc. Method and apparatus for stabilizing and tuning the bandwidth of laser light
US8158960B2 (en) * 2007-07-13 2012-04-17 Cymer, Inc. Laser produced plasma EUV light source
US8803027B2 (en) * 2006-06-05 2014-08-12 Cymer, Llc Device and method to create a low divergence, high power laser beam for material processing applications
JP5179736B2 (en) * 2006-09-21 2013-04-10 株式会社小松製作所 Laser equipment for exposure equipment
US20080089369A1 (en) * 2006-10-16 2008-04-17 Pavilion Integration Corporation Injection seeding employing continuous wavelength sweeping for master-slave resonance
JP4818871B2 (en) * 2006-10-20 2011-11-16 株式会社小松製作所 Laser equipment
JP4804313B2 (en) * 2006-11-17 2011-11-02 株式会社小松製作所 Narrow band laser equipment for exposure equipment
TWI424645B (en) * 2007-04-13 2014-01-21 Cymer Inc Method and apparatus for stabilizing and tuning the bandwidth of laser light
US7659529B2 (en) 2007-04-13 2010-02-09 Cymer, Inc. Method and apparatus for vibration reduction in laser system line narrowing unit wavelength selection optical element
US7655925B2 (en) 2007-08-31 2010-02-02 Cymer, Inc. Gas management system for a laser-produced-plasma EUV light source
US7812329B2 (en) * 2007-12-14 2010-10-12 Cymer, Inc. System managing gas flow between chambers of an extreme ultraviolet (EUV) photolithography apparatus
US20090095924A1 (en) * 2007-10-12 2009-04-16 International Business Machines Corporation Electrode design for euv discharge plasma source
US7960701B2 (en) 2007-12-20 2011-06-14 Cymer, Inc. EUV light source components and methods for producing, using and refurbishing same
JP2009246345A (en) * 2008-03-12 2009-10-22 Komatsu Ltd Laser system
US7872245B2 (en) * 2008-03-17 2011-01-18 Cymer, Inc. Systems and methods for target material delivery in a laser produced plasma EUV light source
US20090250637A1 (en) * 2008-04-02 2009-10-08 Cymer, Inc. System and methods for filtering out-of-band radiation in EUV exposure tools
US8198612B2 (en) * 2008-07-31 2012-06-12 Cymer, Inc. Systems and methods for heating an EUV collector mirror
US8519366B2 (en) * 2008-08-06 2013-08-27 Cymer, Inc. Debris protection system having a magnetic field for an EUV light source
US7641349B1 (en) 2008-09-22 2010-01-05 Cymer, Inc. Systems and methods for collector mirror temperature control using direct contact heat transfer
US7995637B2 (en) * 2008-10-21 2011-08-09 Cymer, Inc. Gas discharge laser chamber
US8283643B2 (en) * 2008-11-24 2012-10-09 Cymer, Inc. Systems and methods for drive laser beam delivery in an EUV light source
US8969838B2 (en) * 2009-04-09 2015-03-03 Asml Netherlands B.V. Systems and methods for protecting an EUV light source chamber from high pressure source material leaks
US8304752B2 (en) * 2009-04-10 2012-11-06 Cymer, Inc. EUV light producing system and method utilizing an alignment laser
US8000212B2 (en) * 2009-12-15 2011-08-16 Cymer, Inc. Metrology for extreme ultraviolet light source
US8173985B2 (en) * 2009-12-15 2012-05-08 Cymer, Inc. Beam transport system for extreme ultraviolet light source
JP5687488B2 (en) 2010-02-22 2015-03-18 ギガフォトン株式会社 Extreme ultraviolet light generator
US8368039B2 (en) 2010-04-05 2013-02-05 Cymer, Inc. EUV light source glint reduction system
US8462425B2 (en) 2010-10-18 2013-06-11 Cymer, Inc. Oscillator-amplifier drive laser with seed protection for an EUV light source
JP2012216768A (en) 2011-03-30 2012-11-08 Gigaphoton Inc Laser system, extreme-ultraviolet light generation system, and laser light generation method
US8411720B2 (en) * 2011-06-30 2013-04-02 Cymer, Inc. System and method for automatic gas optimization in a two-chamber gas discharge laser system
WO2017158694A1 (en) 2016-03-14 2017-09-21 ギガフォトン株式会社 Laser apparatus and extreme ultraviolet light generation system

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6018537A (en) * 1997-07-18 2000-01-25 Cymer, Inc. Reliable, modular, production quality narrow-band high rep rate F2 laser
US6151346A (en) * 1997-12-15 2000-11-21 Cymer, Inc. High pulse rate pulse power system with fast rise time and low current
US6359922B1 (en) * 1999-10-20 2002-03-19 Cymer, Inc. Single chamber gas discharge laser with line narrowed seed beam
US6392743B1 (en) * 2000-02-29 2002-05-21 Cymer, Inc. Control technique for microlithography lasers

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4534035A (en) 1983-08-09 1985-08-06 Northrop Corporation Tandem electric discharges for exciting lasers
US4959840A (en) 1988-01-15 1990-09-25 Cymer Laser Technologies Compact excimer laser including an electrode mounted in insulating relationship to wall of the laser
IT1231783B (en) 1989-05-12 1992-01-14 Enea LASER HEAD FOR TRANSVERSE DISCHARGE EXCITATION WITH THREE ELECTRODES
US5142166A (en) 1991-10-16 1992-08-25 Science Research Laboratory, Inc. High voltage pulsed power source
WO1996025778A1 (en) 1995-02-17 1996-08-22 Cymer Laser Technologies Pulse power generating circuit with energy recovery
JP2820103B2 (en) * 1996-01-31 1998-11-05 日本電気株式会社 Injection-locked laser device
US6005880A (en) * 1997-02-14 1999-12-21 Lambda Physik Gmbh Precision variable delay using saturable inductors
US6128323A (en) 1997-04-23 2000-10-03 Cymer, Inc. Reliable modular production quality narrow-band high REP rate excimer laser
US5991324A (en) 1998-03-11 1999-11-23 Cymer, Inc. Reliable. modular, production quality narrow-band KRF excimer laser
US5856991A (en) 1997-06-04 1999-01-05 Cymer, Inc. Very narrow band laser
WO1999001915A1 (en) * 1997-07-01 1999-01-14 Cymer, Inc. Very narrow band laser with unstable resonance cavity
US6219360B1 (en) * 1998-04-24 2001-04-17 Trw Inc. High average power solid-state laser system with phase front control
US6016325A (en) 1998-04-27 2000-01-18 Cymer, Inc. Magnetic modulator voltage and temperature timing compensation circuit
WO1999060674A1 (en) * 1998-05-20 1999-11-25 Cymer, Inc. RELIABLE MODULAR PRODUCTION QUALITY NARROW-BAND HIGH REP RATE ArF EXCIMER LASER
JP3879889B2 (en) * 1998-11-20 2007-02-14 株式会社小松製作所 Injection-locked narrow-band pulse laser device
US6381257B1 (en) * 1999-09-27 2002-04-30 Cymer, Inc. Very narrow band injection seeded F2 lithography laser
US6549551B2 (en) * 1999-09-27 2003-04-15 Cymer, Inc. Injection seeded laser with precise timing control
WO2001001531A1 (en) * 1999-06-23 2001-01-04 Lambda Physik Ag Molecular fluorine laser with spectral linewidth of less than 1pm

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6018537A (en) * 1997-07-18 2000-01-25 Cymer, Inc. Reliable, modular, production quality narrow-band high rep rate F2 laser
US6151346A (en) * 1997-12-15 2000-11-21 Cymer, Inc. High pulse rate pulse power system with fast rise time and low current
US6359922B1 (en) * 1999-10-20 2002-03-19 Cymer, Inc. Single chamber gas discharge laser with line narrowed seed beam
US6392743B1 (en) * 2000-02-29 2002-05-21 Cymer, Inc. Control technique for microlithography lasers

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
BOLLANTI S. ET AL.: "Compact three electrodes excimer laser IANUS for a POPA optical system", SPIE PROCEEDINGS, vol. 2206, 1994, pages 144 - 153, XP002952251 *
See also references of EP1378036A4 *

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1378035A1 (en) * 2001-04-09 2004-01-07 Cymer, Inc. Injection seeded f 2? laser with pre-injected filter
EP1378038A1 (en) * 2001-04-09 2004-01-07 Cymer, Inc. Injection seeded f2 laser with wavelength control
EP1378038A4 (en) * 2001-04-09 2006-03-15 Cymer Inc Injection seeded f2 laser with wavelength control
EP1378035A4 (en) * 2001-04-09 2006-03-22 Cymer Inc Injection seeded f 2? laser with pre-injected filter

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EP1378036A1 (en) 2004-01-07
DE60231798D1 (en) 2009-05-14
US6549551B2 (en) 2003-04-15
JP2007150333A (en) 2007-06-14
JP2004524705A (en) 2004-08-12
JP4542745B2 (en) 2010-09-15
EP1378036A4 (en) 2006-01-25
EP1378036B1 (en) 2009-04-01
US20020085606A1 (en) 2002-07-04

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