Claims
- 1. An electromagnetic cavity resonator for sustaining TM.sub.O and TE.sub.O mode wave components, said cavity resonator being adapted for substantially increasing the TE.sub.O mode components, decreasing the TM.sub.O mode components and projecting plasma confining TE.sub.O mode components on to a plasmatized material, said electromagnetic cavity resonator comprising:
- a first electromagnetic wave semi-reflecting reflector forming a first outer boundary of said cavity resonator;
- a second electromagnetic wave reflector forming a second outer boundary of said cavity resonator and facing the first reflector, said second reflector being an outer surface of a transparent material having an index of refraction n;
- said transparent material including a conical member of revolution having an axial location integral with the second reflector on the side of the second reflector facing the first reflector, said conical member having an angular half aperture i equal to the complement of the Brewster's angle to .pi.2, so that tan (.pi./2-1)=1/n, whereby said second reflector and member act simultaneously as a boundary of the cavity resonator and as a filter for removing TM.sub.O mode components;
- an active lasing medium located between the first and second reflectors so that TM.sub.O mode components, at a given wavelength, propagate through the second reflector;
- a TM.sub.O --TM.sub.m mode coverter means for rotating the polarization direction of the TM.sub.O mode components propagating through the second reflector by an angle of .pi./2 to derive TE.sub.O mode components; and
- means for focusing said TE.sub.O mode components on to a material to be plasmatized.
- 2. An electromagnetic cavity resonator according to claim 1, wherein the conical member of revolution is an extension of said transparent material and the second electromagnetic wave reflector is a plane mirror.
- 3. An electromagnetic cavity resonator according to claim 1, wherein the conical member of revolution is formed by a hollow in said transparent material and the second electromagnetic wave reflector is a conical mirror having a half apex angle of 180.degree.-2i where i is the Brewster's angle of the reflector.
- 4. An electromagnetic cavity resonator for sustaining TM.sub.O and TE.sub.O mode wave components of a given wavelength, said cavity resonator being adapted for substantially increasing the TE.sub.O mode components, decreasing the TM.sub.O mode components and projecting plasma confining TE.sub.O mode components on to a plasmatized material, said electromagnetic cavity resonator comprising:
- a first electromagnetic wave semi-reflecting reflector forming a first outer boundary of said cavity resonator;
- a second electromagnetic wave reflector forming a second outer boundary of said cavity resonator and facing the first reflector, said second reflector being the outer surface of a transparent material having an index of refraction n;
- said transparent material including a conical member of revolution having an axial location integral with the second reflector on the side of the second reflector facing the first reflector, said conical member having an angular half aperture i equal to the complement of the Brewster's angle to .pi./2, so that tan (.pi./2-1)=1/n, whereby said reflector and member act simultaneously as a boundary of the cavity resonator and as a filter for removing TM.sub.O mode components;
- an active lasing medium located between the first and second reflectors so that TM.sub.O mode components, at a given wavelength, propagate through the second reflector;
- a TM.sub.O -TE.sub.O mode converter means for rotating the polarization direction of the TM.sub.O mode components propagating through the second reflector by an angle of .pi./2 to derive TE.sub.O mode components, the mode converter including an elongated dielectric block having a substantially cylindrical shape and formed of a first transparent material, a plurality of slots arranged parallel to each other being formed in each end of the block such that, at each end of the block, laminations of the first transparent material are separated by laminations of a second transparent material, the ends being connected by a solid central portion of the first transparent material, the planes of the laminations at one end of the block making an angle of 45.degree. with the laminations at the other end and the depth of the laminations in the direction of the cylinder axis being equal to the half of said wavelength; and
- means for focusing said TE.sub.O mode components onto a material to be plasmatized.
- 5. A source of TE.sub.O optical waves comprising a cavity wave resonator;
- the cavity wave resonator including:
- a first electromagnetic wave semi-reflecting reflector forming a first outer boundary of said cavity resonator;
- a second electromagnetic wave reflector forming a second outer boundary of said cavity resonator and facing the first reflector;
- an active lasing medium located between the first and second reflectors so that TM.sub.O mode components at a given wavelength propagate through the second reflector,
- a TM.sub.O -TE.sub.O mode converter means for rotating the polarization direction of the TM.sub.O mode components propagating through the second reflector by an angle of .pi./2 to derive TE.sub.O mode components, the mode converter including an elongated dielectric block having a substantially cylindrical shape and formed of a first transparent material, a plurality of slots arranged parallel to each other being formed in each end of the block such that, at each end of the block, laminations of the first transparent material are separated by laminations of a second transparent material, the ends being connected by a solid central portion of the first transparent material, the planes of the laminations at one end of the block making an angle of 45.degree. with the laminations in the direction of the cylinder axis being equal to the half of said wavelength.
Parent Case Info
The present application is a continuation-in-part of U.S. pat. application Ser. No. 125,089 filed Feb. 27, 1980, now abandoned.
US Referenced Citations (9)
Non-Patent Literature Citations (2)
Entry |
L. H. Adams et al.: Superimposed Birefractory Plates, Journal of Research of the National Bureau of Standards-vol. 69C, No. 2, pp, 103-114. |
Yasuto Mushiake et al.: Generation of Radially Polarized Optical Beam Mode by Laser Oscillation, Proc IEEE, vol. 9, 9/72, pp. 1107-1109. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
125089 |
Feb 1980 |
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