Technical Field
This invention relates to gas discharge devices, and more particularly, to a method and an apparatus for preionizing the gas mixture of a gas discharge device.
Background Art
Gas discharge devices (such as lasers) typically operate by exciting a gas, such as neon, helium, or carbon dioxide (CO.sub.2), to a highly ionized plasma state and producing coherent light when the excited gas emits light of a characteristic energy (i.e., discharging). The gas, which is generally retained under pressure in a closed vessel, is excited to the higher energy, plasma, state in a discharge region located between two electrodes. The plasma is generally formed by imposing a high voltage between electrodes disposed on opposite sides of the discharge region.
Once the gas discharge device has begun to produce its light, it enters a self-sustaining mode. In this mode, the gas contained in the discharge region carries a current in excess of a characteristic threshold level (the sustaining current) and, as a result, sustains its own discharge for an extended period of time.
A gas discharge device operates in a pulsed mode, since the energy produced in the form of light must be refreshed from time to time by re-imposing the voltage across the discharge region. The pulses are typically 10 to 20 microseconds in duration.
If the gas discharge device is a laser, two optical assemblies, such as mirrors, are located at opposite sides of the pressure vessel. At least one of the optical assemblies is partially transmissive. The optical assemblies cause the discharge light beam to be reflected therebetween and define an optical axis for the laser light that passes through the partially transmissive optical assembly.
It has been found that a self-sustaining gas discharge device can produce longer pulses than are otherwise possible if the gas in the discharge region is maintained in an ionized state while it is discharging. An electron beam is a particularly convenient way of ionizing the gas in the discharge region. However, external electron beam sources for producing long duration electron beams are fragile and cumbersome.
It is therefore desirable to have a long pulse self-sustaining gas discharge device without the requirement of using a long duration electron beam source.
Disclosure of the Invention
It is an object of the present invention to provide a gas discharge device, such as a laser, that produces light pulses having extended durations.
It is another object of the present invention to provide an ionized gas discharge device that does not require continuous ionization of the gas.
It is a further object of the present invention to provide a gas discharge device that ionizes the gas mixture prior to causing the gas mixture of discharge.
It is a still another object of the present invention to provide a method for preionizing a gas discharge device.
According to one aspect, the invention is a preionized gas discharge device that includes a container and an ionizable gas mixture contained within the container, the ionizable gas mixture being capable of discharging. The invention further comprises discharge voltage means for selectively producing a discharge voltage and electrode means connected to the discharge voltage means for causing the gas mixture to discharge in response to the discharge voltage imposed across the electrode means by the discharge voltage means. In addition, the invention comprises ionizing beam means for selectively producing an ionizing beam capable of ionizing the gas mixture and directing the ionizing beam into the container and control means for controlling the operation of the ionizing beam means and the discharge voltage means. The control means causes the ionizing beam source to direct the ionizing beam into the container to ionize the gas mixture prior to the discharge voltage means imposing the discharge voltage across the electrode means.
In another aspect, the invention is a preionized gas discharge laser that comprises a laser container and an ionizable gas mixture contained within the laser container, the ionizable gas mixture being capable of lasing. The invention further comprises discharge voltage means for selectively producing a discharge voltage and electrode means connected to the discharge voltage means, for causing the gas mixture to lase in response to the discharge voltage imposed across the electrode means by the discharge voltage means. In addition, the invention comprises ionizing beam means for selectively producing an ionizing beam capable of ionizing the gas mixture and directing the ionizing beam into the laser container, and control means for controlling operation of the ionizing beam means and the discharge voltage means. The control means causing the ionizing beam means to direct the ionizing beam into the laser container to ionize the gas mixture prior to the discharge voltage means imposing the discharge voltage across the electrode means.
In a further aspect, the invention comprises a method for preionizing a gas discharge device having a container containing an ionizable gas mixture, where the ionizable gas mixture is capable of lasing in response to a controllable discharge voltage imposed between electrode means. The method comprises the steps of controllably producing an ionizing beam consisting of a series of pulses, controllably directing the ionizing beam into the container to ionize the gas mixture, and imposing the discharge voltage between the electrode means.
Brief Description of the Drawings
FIG. 1 is a cross-sectional schematic diagram of the apparatus of the present invention.
FIG. 2A is a graph of the time response of the current density produced by the electron beam source, according to one aspect of the present invention.
FIG. 2B is a graph of the time response of the voltage produced by the discharge voltage source used in the present invention.
FIG. 2C is a graph of the time response of the current produced by the discharge voltage source used in the present invention.
Best Modes for Carrying Out the Invention
Referring to FIG. 1, the present invention includes a laser container 10 which has been filled with an ionizable gas mixture. An example of an appropriate gas mixture is a mixture of approximately six percent carbon dioxide (CO.sub.2), twelve percent nitrogen (N.sub.2), and eighty-one percent helium (He). The laser container 10 is sealed to the outside atmosphere and includes two optical assemblies 12, such as mirrors, distributed along an optical axis 14 and positioned at opposite ends of the container 10. At least one of the optical assemblies 12 is partially transmissive to the laser light that is produced along the optical axis 14 inside the container means 10.
Within the container 10, or in its close proximity, are two electrodes 16, including an anode 16A and a cathode 16C which are positioned generally on opposite sides of the optical axis 14. The anode 16A can be, for example, a length of a conductive metal placed adjacent one side of the container 10. The cathode 16C can be, as shown in the embodiment of FIG. 1, a length of a conductive metal partially composed of a screen 16S, placed adjacent an opposite side of the container 10. The cathode 16C and anode 16A, for example, can each be five centimeters wide and ninety centimeters long, and the gap between them can be five centimeters. If desired, the cathode 16C and the anode 16A can be exchanged, with the anode 16A being partially composed of a screen.
In order for the gas mixture contained in the container 10 to discharge, the gas mixture must be excited. The excitation is provided by applying a discharge voltage between the anode 16A and the cathode 16C. The discharge voltage is supplied by the controllable discharge voltage source 18. As the discharge voltage builds, the gas mixture becomes excited into a plasma state and a discharge current begins to pass between the electrodes 16. After the discharge voltage reaches a threshold level, the discharging action of the gas mixture becomes self-sustaining.
By preionizing the gas mixture before the discharge voltage is applied by the discharge voltage source 18, the discharging action of the gas mixture in the container 10 can be maintained for longer periods of time, thereby resulting in longer pulses of laser light. The ionization can be created by injecting an ionizing beam into the laser container 10 between the electrodes 16. This energy can be in the form of ionized particles, X-rays, or ultraviolet light. However, the ionization is preferably created by injecting a beam of electrons supplied from an electron source 20. The electron source 20 can take the form of a low-pressure discharge source, a field emission source, or a thermionic plasma cathode source.
If the electron source 20 is a low-pressure discharge source, it includes an electron beam enclosure 22 that is filled with a very low pressure atmosphere of a stable gas. For example, the electron beam enclosure 22 can be filled with He at a pressure of 20 mTorr. The electron source 20 will also include two electrodes 24, one being an electron beam anode 24A and the other an electron beam cathode. In FIG. 1 the electron beam cathode is the container cathode 16C which then serves as the cathode of both the discharge electrodes 16 and the electron source electrodes 24. When the electrodes 24 are connected to a high voltage source 26, capable of producing a maximum voltage of, for example, 50 to 150 kilovolts, electrons are boiled from the anode 24A and accelerated toward the electron source cathode 24C. If, for example, the voltage between the electrodes 24 is 100 kilovolts, the electrons produced by the electron source 20 have an energy of 100 kiloelectron volts (keV). Electrons with energies of about this level, or more, are capable of ionizing the gas mixtures that are used with gas discharge lasers if the density of the current is approximately 10 to 20 milliamperes per square centimeter, or more. When, as shown in FIG. 1, the electron source cathode is a screen such as the screen 16S, the electrons which are accelerated by the voltage between the electrodes 24 pass out of the electron beam enclosure 22 in the beam direction shown by the arrow 28 and into the container 10.
The electron source 20 can be placed closely to the container 10 in order to maximize the electron beam current entering the container 10. Since the gas mixture in the electron beam enclosure 22 is kept at a very low pressure and the gas mixtures in the container 10 and the electron beam enclosure 22 are different, a mechanism must be used to keep the two gas mixtures separate. The mechanism used in the present embodiment is a thin film 30 that allows the electrons to pass from the electron source 20 to the container 10. The film 30 must have sufficient strength to withstand the pressure differential between the container 10 and the electron beam enclosure 22. One suitable material is a Kapton.RTM. film with an aluminum coating. A supporting structure 32 is placed inside the electron beam enclosure 22 close to the film 30 and is attached for support to the electron beam enclosure 22.
If, for example, the screen cathode 24C is a rectangle about five centimeters wide and ninety centimeters long, the electron beam current can be supplied by ten separate electron beam discharge sources, each having an inner diameter of approximately eight centimeters, rather than the single discharge source shown in FIG. 1. If the high voltage source 26 produces eighty amperes of current, the current losses through the cathode 24C, the film 30, and the cathode 16C reduce the current density reaching the ionizable gas mixture to approximately 20 milliampere per square centimeter.
It has been discovered that, by properly coordinating the voltages applied to the discharge electrodes 16 and the electron source electrodes 24, the gas mixture in the container 10 can be ionized before the discharge voltage reaches its self-sustaining threshold. The result is that the laser system can produces longer laser pulses than possible without preionizing the gas mixture.
The discharge voltage source 18 and the electron source high voltage source 26 are connected to and controlled by a control system 34 to coordinate their operation. While the control system 34 can take the form of a pulse-forming network, it can also be a pulse delay generator that produces pulses on two lines, one delayed with respect to the other. The delayed line of the pulse delay generator is connected to the discharge voltage source 18, and the other line is connected to the electron source high voltage source 26.
FIGS. 2A-2C are graphs of the time responses of important variables that relate to preionizing the gas mixture in the container 10. FIG. 2A is a graph of current density produced by the discharge source 20. It shows a pulse 35 whose duration is between 10 and 15 microseconds (between times t.sub.0 and t.sub.2), with a maximum magnitude of approximately 20 milliamperes per square centimeter or more. This desired electron beam current can be produced by properly driving the electron source electrodes 24 with the high voltage source 26. The electron source current can be turned off abruptly (at time t.sub.2) after the gas mixture in the container 10 has been adequately preionized. As the electron source current pulse is building to its maximum value (e.g., approximately the last five microseconds of the electron source current pulse, from time t.sub.1 to t.sub.2), the voltage supplied to the electrodes 16 by the discharge voltage source 18 can be brought to a sustaining level 36 (see FIG. 2B). Concurrently, the discharge current (see FIG. 2C) rises to a maximum current 38 well in excess of a maintaining level 42 of approximately 670 milliamperes per square centimeter. After the electron source current is turned off, the discharge voltage rises to a maintaining level 40 of approximately 30 kV. At the same time, the discharge current diminishes to the maintaining level 42. If desired, the duration of the pulse 35 can be decreased if the energy of the ionizing beam is increased.
After the excitation energy provided to the gas mixture in the container 10 has been depleted in the form of a pulse of laser light, the discharge voltage and current are turned off (at time t.sub.3). The duration of the laser light pulse can be as great as approximately 50 microseconds.
While the detailed description above has been expressed in terms of ionizing a specific gas mixture by an electron source, those skilled in the art will appreciate that many other gas mixtures having different ionizing and discharge-maintaining current densities can be used, as well as many other forms of ionizing energy. Accordingly, it can be appreciated that various modifications of the above-described embodiments may be made without departing from the spirit and the scope of the invention. Therefore, the spirit and the scope of the present invention are to be limited only by the following claims.