Claims
- 1. A thin-film processing electromagnet for producing a uniaxial magnetic field along a surface of a substrate comprising:a magnetically permeable plate-shaped core having a center, a front side, a back side, a non-rectangular periphery bounding the front and back sides, and first and second orthogonal axes extending parallel to the front side of the plate-shaped core and intersecting at the center of the plate-shaped core; an electromagnetic coil having a plurality of windings that are wrapped around the first orthogonal axis and extend across the front side of the plate-shaped core; and said windings being arranged in a pattern across the front side of the plate-shaped core such that windings close to the center of the plate-shaped core extend substantially parallel to the second orthogonal axis and windings spaced from the center of the plate-shaped core along the first orthogonal axis are bowed with respect to the second orthogonal axis for reducing skew of the uniaxial magnetic field along the surface of the substrate.
- 2. The electromagnet of claim 1 in which the windings spaced from the center of the plate-shaped core are bowed in concave shapes facing the center of the core.
- 3. The electromagnet of claim 2 in which the windings are incrementally more bowed as a function of distance from the center of the plate-shaped core along the first orthogonal axis.
- 4. The electromagnet of claim 2 in which the windings are laid out in a pattern that is symmetric with respect to both the first orthogonal axis and the second orthogonal axis.
- 5. The electromagnet of claim 1 in which the windings spaced from the center of the plate-shaped core individually include a center section that is substantially parallel to the second orthogonal axis across the front side of the plate-shaped core and two end sections that are bent with respect to the second orthogonal axis across the front side of the plate-shaped core.
- 6. The electromagnet of claim 5 in which the center sections of the windings incrementally decrease in length as a function of distance from the center of the plate-shaped core along the first orthogonal axis.
- 7. The electromagnet of claim 5 in which a spacing between the center sections of the windings along the first orthogonal axis is greater than a spacing between the end sections of the windings at the core periphery.
- 8. The electromagnet of claim 7 in which angles formed between the second orthogonal axis and the bent sections of the windings along the core periphery incrementally increase as a function of distance from the core center along the first orthogonal axis.
- 9. The electromagnet of claim 1 in which the first and second orthogonal axes define a reference plane and the non-rectangular periphery departs from a rectangular shape to more completely fill a circular area of the reference plane.
- 10. The electromagnet of claim 9 in which the non-rectangular periphery has a substantially circular shape in the reference plane.
- 11. The electromagnet of claim 1 further comprising a winding guide mounted on the front side of the plate-shaped core including spacing features for bowing windings with respect to the second orthogonal axis.
- 12. The electromagnet of claim 11 in which the spacing features include shims for spacing the windings apart from each other along the first orthogonal axis.
- 13. A chuck assembly for supporting a substrate in a substrate processing environment and for magnetically orienting a magnetic film on a surface of the substrate comprising:a chuck housing having a mounting surface for supporting the substrate within the processing environment; an electromagnet located within an interior space of the chuck housing for producing a substantially uniaxial magnetic field in a plane of the substrate's surface; a magnetically permeable core of the electromagnet having a center, a periphery, and front and back sides wrapped by electrically conductive windings; the core periphery departing from a rectangular shape to more completely fill the interior space of the chuck housing; front portions of the electrically conductive windings extending across the front side of the magnetically permeable core between the front side of the magnetically permeable core and the mounting surface of the chuck housing; back portions of the electrically conductive windings extending across the back side of the magnetically permeable core in positions separated from the mounting surface by the magnetically permeable core; and the front winding portions individually departing from a linear form by differing amounts to reduce skew of the uniaxial magnetic field throughout the plane of the substrate's surface.
- 14. The chuck assembly of claim 13 in which the front winding portions include respective lengths divided in different proportions between a straight section and two bent sections.
- 15. The chuck assembly of claim 14 in which the straight sections of the front winding portions extend normal to a winding axis, and the straight sections incrementally decrease in length from the center towards the periphery of the core along the winding axis.
- 16. The chuck assembly of claim 14 in which a spacing between adjacent straight sections of the front winding portions is greater than a spacing between adjacent bent sections of the front winding portions along the core periphery.
- 17. The chuck assembly of claim 16 in which an amount of bending of the bent sections at the core periphery increases as a function of a cumulative difference in spacing between the straight and bent sections.
- 18. The chuck assembly of claim 14 in which the bent sections are bent with respect to the straight sections toward the core center.
- 19. The chuck assembly of claim 13 in which the electrically conductive windings are wound around a winding axis that intersects the core center, and the individual front winding portions depart from the linear form by increasing amounts from the core center along the winding axis.
- 20. The chuck assembly of claim 13 in which the magnetically permeable core is plate-shaped.
- 21. The chuck assembly of claim 20 in which the interior space of the chuck housing is substantially circular and the core periphery departs from a rectangular shape to more completely fill the circular space within the chuck housing.
- 22. The chuck assembly of claim 21 in which the core periphery has a substantially circular shape.
- 23. The chuck assembly of claim 13 further comprising a winding guide mounted on the front side of the core including spacing features for bowing windings to depart from the linear form.
- 24. The chuck assembly of claim 23 in which the spacing features include shims for spacing the front winding portions apart from each other.
- 25. A method of assembling a plate-shaped electromagnet for reducing skew of a uniaxial magnetic field effective for magnetically orienting a thin magnetic film on a surface of a substrate comprising the steps of:forming a winding guide on a front side of a plate-shaped core having a center, a front side, a back side, a non-rectangular periphery bounding the front and back sides, and first and second orthogonal axes extending parallel to the front side of the plate-shaped core and intersecting at the center of the plate-shaped core; wrapping a plurality of windings of an electromagnetic coil around the first orthogonal axis; and extending the plurality of windings across the front side of the plate-shaped core along the winding guide such that windings close to the center of the plate-shaped core extend substantially parallel to the second orthogonal axis and windings spaced from the center of the plate-shaped core along the first orthogonal axis are bowed with respect to the second orthogonal axis for reducing skew of the uniaxial magnetic field along the surface of the substrate.
- 26. The method of claim 25 including a further step of dividing individual windings extending across the front side of the core into straight center sections and two bent end sections.
- 27. The method of claim 26 including a further step of incrementally decreasing a length of the straight center sections as a function of distance from the center of the plate-shaped core along the first orthogonal axis.
- 28. The method of claim 26 including a further step of spacing the center sections of adjacent windings apart by an amount greater than a spacing separating the end sections of the windings at the core periphery.
- 29. The method of claim 28 including a further step of incrementally increasing angles between the second orthogonal axis and the bent sections of the windings along the core periphery as a function of distance from the core center along the first orthogonal axis.
Parent Case Info
This application claims the benefit of U.S. Provisional Application No. 60/179,914, filed on Feb. 3, 2000, which provisional application is incorporated by reference herein.
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|
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