This application relates to and claims priority to corresponding Germany Patent Application No. 100 30 495.8, which was filed on Jun. 21, 2000, and which is incorporated by reference herein.
The invention relates to a method of connecting a multiplicity of optical elements to a basic body, in particular for producing a faceted mirror. The invention also relates to a faceted mirror produced by the method.
U.S. Pat. No. 4,277,141 discloses a method by which a multifaceted mirror is produced in several steps, to be specific individual mirrors are created in a first step, and the individual mirrors are subsequently fixed and aligned and are bonded to a supporting body by means of an adhesive.
U.S. Pat. No. 4,195,913 discloses a faceted mirror in which a multiplicity of individual mirrors are adhesively bonded or screwed on a spherical support structure.
In U.S. Pat. No. 6,166,868 there is a description of an optical mount for an optical component, an inner part being connected to an outer frame by a plurality of resilient articulated bars. The resilient articulated bars are produced galvanoplastically.
The present invention is based on the object of providing a method of connecting a multiplicity of optical elements of the type mentioned at the beginning, it being possible for the multiplicity of optical elements to be arranged on the basic body with high accuracy, in particular with respect to position and angularity, so that for example beam mixing and field imaging operations can be performed with high precision.
The present invention is based on the object of forming a faceted mirror with a multiplicity of individual optical mirror elements which produces a homogeneous lighting distribution or homogeneous illumination and very exact beam mixing and field imaging.
The object is achieved according to the invention by the method of joining together a multiplicity of optical elements on a basic body, the individual optical elements being positioned on the basic body and subsequently connected to the basic body by a galvanoplastic joining technique. A faceted mirror produced by the method according to the invention is described as a method of connecting a multiplicity of optical elements to a basic body, in particular for producing a faceted mirror, for example for beam mixing and field imaging for an EUV lighting system, the multiplicity of optical elements being aligned on an auxiliary structure and the optical elements subsequently being made to grow together galvanoplastically on their rear sides, forming a supporting structure as the basic body. The auxiliary structure is formed by a plurality of parts with spacers or positioners lying in-between.
By the method according to the invention, a multiplicity of individual optical elements, which may be of a completely identical form, can be connected to one another and to a basic body in a relatively simple way and very precisely by the galvanoplastic process. Since exactly reproducible conditions are created by the galvanoplastic process, in this way it is possible for example to form a faceted mirror which permits the homogeneous illumination of a field, thereby making correspondingly good beam mixing and exact field imaging possible.
With the method according to the invention, a beam mixing or lighting which eliminates the disadvantageous higher light intensity in the medium range is achieved. This is of advantage in particular in optical lithography with an EUV lighting system, in which for example it is desirable to have on the reticle (mask) a homogeneously illuminated area that is as large as possible.
It is possible for the method according to the invention to be realized by two production principles:
1. The optical elements may be connected to the basic body by a galvanoplastic joining technique, in which the basic body may also be galvanically formed.
In the case of galvanic forming of the basic body, the latter is created in such a way that it includes the position of the facets, but not their surface quality, on the supporting body. The required surface quality is then realized by the optical elements, for example mirror elements, which after placement on the basic body are connected to the latter by growing together galvanically. The galvanic connection achieves not only precise, full-area and consequently very exact positioning and connection but also very good heat conduction for the rapid heat removal from the mirror elements into the basic body.
2. On an auxiliary structure which represents the negative form of the optical part to be produced, for example of a faceted mirror, the optical elements are for example fixed by an adhesive or a resin, in the production of a faceted mirror from mirror elements their mirrored sides being directed toward the auxiliary structure. In this case, the exact position and alignment of the optical elements is defined by the auxiliary structure. By this type of fixing, the optical surfaces directed toward the auxiliary structure, such as for example the mirror surfaces, are also protected from contaminants during the subsequent galvanoplastic process.
As soon as all the elements have been brought into position, the complete unit is cathodically connected in a bath and the optical elements are bonded into a body which is building up or growing up.
If lenses are used as optical elements, they are fixed on one of the optical surfaces. The second optical surface must in this case then be separately protected from contaminants. Lenses or nonconducting mirror elements must be made electrically conductive in advance by a corresponding coating.
In advantageous developments of the invention, it may be provided that cooling and/or reinforcing devices are incorporated into the growing body during the galvanoplastic process.
The method according to the invention forms virtually a monolithic body which, by good heat transfer of the individual optical elements to the basic body, makes efficient cooling of the optical element possible.
Further advantageous refinements and developments of the invention emerge from the subclaims and from the exemplary embodiments described in principle below with reference to the drawing, in which:
A method of producing a faceted mirror and a faceted mirror produced by the method are described by way of example below. In principle, however, the method is also suitable for connecting or joining together other optical elements, such as lenses and lens arrays for example. In
The production of the faceted mirror 1 with correspondingly high precision and homogeneous or as-desired illumination takes place according to
In the case of the present invention, as a modification of normal galvanoforming, a multiplicity of mirror elements, for example 200 to 300 elements, are produced in advance by a conventional production process, such as milling, grinding and polishing for example. A multiplicity of identical mirror elements are subsequently brought into position and alignment on the basic body 8 and then connected to one another by a following galvanoplastic process. In this way, a faceted mirror is finally obtained as virtually a single monolithic part in an extremely precise form.
By producing many identical mirror elements, the production of a faceted mirror is also facilitated, simplified and reduced in cost. Mirror elements of poor quality can be segregated in advance, or mirror elements 9 which are identical or virtually identical, in particular with respect to their optical properties, may be selected.
Galvanoplastic processes are generally known, for which reason they are not discussed in any more detail here. In principle, this takes place by the mirror elements 9 being brought into their position on the basic body 8 and the entire unit then being cathodically connected in an electrolytic bath and the desired material, for example Cu or Ni, being used as the anode, so that the parts can grow together to form one unit. In this way, for example, the growing on of an intermediate layer 10, such as a copper layer of any desired thickness can be achieved.
In principle, all conductive materials or materials which can be made conductive by coating come into consideration as materials for the mirrors. For EUV lighting systems, it should also be ensured that polishing to the required surface quality (0.2 to 0.3 nm RMS) is possible. In addition, the material should have good heat conductivities. For the reasons mentioned above, copper coated with nickel is generally used as the facet material.
The mirror elements 9 placed on the basic body 8 are connected to the basic body 8 by a galvanoplastic joining technique, as indicated by an intermediate layer 10 between the mirror elements 9 and the basic body 8.
As an alternative to this, according to
The mirror elements are fixed with their mirrored side on the auxiliary structure 11, for example by an adhesive or a resin 13. By this type of alignment and fixing, the mirror surfaces of the mirror elements 9 are protected from contaminants during the subsequent galvanoplastic process. Once all the mirror elements 9 have been brought into position, the complete device is cathodically connected in an electrolytic bath and the elements are connected to one another in a growing body, which consequently forms a supporting structure 14 for the individual mirror elements 9, or are bonded into the body produced.
When forming lens arrays, the individual lenses are likewise respectively fixed by one of the optical surfaces on the auxiliary structure 11. The second optical surfaces must then be separately protected from contaminants. Lenses or nonconducting mirror elements must be made electrically conductive in advance by a corresponding coating.
After the completion of a sufficiently strong supporting structure 14, reinforcing structures can be incorporated by galvanic means subsequently or else at the same time as the growing takes place, or they can be correspondingly made to grow up. In
It can be additionally seen from
The cooling channels 16 can be formed during the galvanoplastic process. For this purpose, it is only necessary to provide corresponding wax inserts in serpentine form, these inserts subsequently being melted out.
A further solution may comprise placing a copper tube on in a serpentine form and then allowing it to grow in during the galvanoplastic process. In this way, a very good heat transfer is then obtained on account of metallic bonding.
It goes without saying that combinations are also possible. The same applies for example to the forming of the supporting structure 14 with the honeycomb structure 15, into which cooling channels 16 may likewise be formed, or else the honeycombs themselves may serve for cooling.
Number | Date | Country | Kind |
---|---|---|---|
100 30 495 | Jun 2000 | DE | national |
Number | Name | Date | Kind |
---|---|---|---|
3378469 | Rex | Apr 1968 | A |
3837125 | Johnson | Sep 1974 | A |
3917385 | Caswell | Nov 1975 | A |
4038971 | Bezborodko | Aug 1977 | A |
4195913 | Dourte et al. | Apr 1980 | A |
4236296 | Woolhouse et al. | Dec 1980 | A |
4277141 | Kleiber | Jul 1981 | A |
4338165 | Vlahos | Jul 1982 | A |
4389115 | Richter | Jun 1983 | A |
4390260 | Prinz | Jun 1983 | A |
4420223 | Watanabe et al. | Dec 1983 | A |
4710276 | Kull | Dec 1987 | A |
4740276 | Marmo et al. | Apr 1988 | A |
5428482 | Bruning et al. | Jun 1995 | A |
5518383 | Abiven | May 1996 | A |
5537262 | Aoki et al. | Jul 1996 | A |
5564066 | Abiven | Oct 1996 | A |
5891317 | Teichmann et al. | Apr 1999 | A |
6118577 | Sweatt et al. | Sep 2000 | A |
6155868 | Wu et al. | Dec 2000 | A |
6166868 | Holderer et al. | Dec 2000 | A |
6229657 | Holderer et al. | May 2001 | B1 |
6252712 | Fürter et al. | Jun 2001 | B1 |
6259571 | Holderer et al. | Jul 2001 | B1 |
6275344 | Holderer | Aug 2001 | B1 |
6307688 | Merz et al. | Oct 2001 | B1 |
6369959 | Trunz et al. | Apr 2002 | B1 |
6373552 | Braat et al. | Apr 2002 | B1 |
6503383 | Holderer et al. | Jan 2003 | B1 |
6552862 | Dieker | Apr 2003 | B1 |
6580570 | Becker et al. | Jun 2003 | B1 |
6603615 | Melzer et al. | Aug 2003 | B1 |
6824277 | Freitag et al. | Nov 2004 | B1 |
20020001142 | Osterried | Jan 2002 | A1 |
20020021504 | Bayer et al. | Feb 2002 | A1 |
Number | Date | Country |
---|---|---|
371906 | Oct 1963 | CH |
204 320 | Nov 1983 | DD |
1 146 667 | Apr 1963 | DE |
1 675 685 | Jan 1970 | DE |
26 37 725 | Feb 1978 | DE |
2727563 | Apr 1978 | DE |
30 30 549 | Feb 1982 | DE |
3406907 A 1 | Oct 1984 | DE |
41 36 580 | May 1993 | DE |
196 49 993 | May 1998 | DE |
197 35 831 | Feb 1999 | DE |
199 08 554.4 | Mar 1999 | DE |
198 25 716 A 1 | Dec 1999 | DE |
199 10 947 A 1 | Sep 2000 | DE |
10107674 | Sep 2002 | DE |
10123585 | Dec 2002 | DE |
10132408 | Feb 2003 | DE |
10134559 | Feb 2003 | DE |
10153541 | May 2003 | DE |
10153542 | May 2003 | DE |
10135962 | Jun 2003 | DE |
10302771 | Aug 2004 | DE |
0 053 463 | Jun 1982 | EP |
0 143 014 | May 1985 | EP |
0 230 277 | Jul 1987 | EP |
0 597 209 | Sep 1993 | EP |
0 624 807 | Nov 1994 | EP |
0767246 | Apr 1997 | EP |
0898189 | Feb 1999 | EP |
0 964 281 | Dec 1999 | EP |
1 209 500 | May 2002 | EP |
2 010 523 | Jun 1979 | GB |
2002071922 | Mar 2002 | JP |
2002270502 | Sep 2002 | JP |
Number | Date | Country | |
---|---|---|---|
20020021507 A1 | Feb 2002 | US |