Claims
- 1. A micro-machined latching switch, comprising:
a moveable micro-machined cantilever having a magnetic material and a longitudinal axis, wherein said cantilever has a conducting layer; a permanent magnet producing a first magnetic field, which induces a magnetization in said magnetic material, said magnetization characterized by a magnetization vector pointing in a direction along said longitudinal axis of said cantilever, wherein said first magnetic field is approximately perpendicular to said longitudinal axis; and a three-dimensional solenoid coil producing a second magnetic field to switch said cantilever between a first stable state and a second stable state, wherein a temporary current input to said three-dimensional solenoid coil produces said second magnetic field such that a component of said second magnetic field parallel to said longitudinal axis changes direction of said magnetization vector thereby causing said cantilever to switch between said first stable state and said second stable state.
- 2. The switch of claim 1, wherein said three-dimensional solenoid coil includes:
a magnetic core; and a coil line wrapped at least once around said magnetic core.
- 3. The switch of claim 2, wherein said temporary current is input to flow through said coil line around said magnetic core in a first direction to achieve said first stable state, and said temporary current is input to flow through said coil line around said magnetic core in a second direction to achieve said second stable state.
- 4. The switch of claim 2, wherein said three-dimensional solenoid coil further includes an insulator, wherein said coil line is insulated from said magnetic core by said insulator.
- 5. The switch of claim 2, wherein said three-dimensional solenoid coil includes a first layer, a second layer, and a third layer;
wherein said magnetic core resides in said second layer between said first layer and said third layer; and wherein said coil line wraps around said magnetic core through said first layer in a first direction and through said second layer in a second direction.
- 6. The switch of claim 5, wherein said first layer includes a first insulator portion to insulate a portion of said coil line in said first layer; and
wherein said third layer includes a second insulator portion to insulate a portion of said coil line in said third layer.
- 7. The switch of claim 2, wherein said magnetic core is a permalloy.
- 8. The switch of claim 1, further comprising a magnetic layer, wherein said three-dimensional solenoid coil is positioned between said cantilever and said magnetic layer.
- 9. The switch of claim 8, wherein said magnetic layer is a permalloy.
- 10. The switch of claim 1, further comprising:
a substrate; wherein said cantilever is located between said three-dimensional solenoid coil and said substrate.
- 11. The switch of claim 10, wherein said substrate is located between said cantilever and said permanent magnet.
- 12. The switch of claim 10, wherein said cantilever is supported by said substrate.
- 13. The switch of claim 1, wherein said three-dimensional solenoid coil includes an insulator layer, wherein said cantilever is supported by said insulator layer of said three-dimensional solenoid coil.
- 14. The switch of claim 13, wherein said cantilever is located between said three-dimensional solenoid coil and said permanent magnet.
- 15. The switch of claim 1, wherein in said first stable state, said conducting layer couples an input signal line to an output signal line, and wherein in said second stable state, said conducting layer does not couple said input signal line to said output signal line.
- 16. The switch of claim 15, wherein in said second stable state, said conducting layer couples a second input signal line to a second output signal line;
wherein in said first stable state, said conducting layer does not couple said second input signal line to said second output signal line.
- 17. The switch of claim 1, wherein said magnetic material is a permalloy.
- 18. The switch of claim 1, further comprising:
a substrate; and a support mechanism; wherein said cantilever is supported on said substrate by said support mechanism, wherein said support mechanism includes: a flexure attached to said cantilever; a first support stage mounted on said substrate; and a second support stage mounted on said substrate, wherein said flexure is attached between said first support stage and said second support stage.
- 19. The switch of claim 1, further comprising a support mechanism;
wherein said three-dimensional solenoid coil further includes an insulator layer, wherein said cantilever is supported on said insulator layer by said support mechanism, wherein said support mechanism includes: a flexure attached to said cantilever; a first support stage mounted on said insulator layer; and a second support stage mounted on said insulator layer, wherein said flexure is attached between said first support stage and said second support stage.
- 20. A method for operating a micro-machined magnetic latching switch, comprising the steps of:
(A) supporting a cantilever, wherein the cantilever includes a magnetic material and a longitudinal axis; (B) producing a first magnetic field with a permanent magnet, which thereby induces a magnetization in the magnetic material, the magnetization characterized by a magnetization vector pointing in a direction along the longitudinal axis of the cantilever, the first magnetic field being approximately perpendicular to the longitudinal axis; and (C) producing a second magnetic field with a three-dimensional solenoid coil to switch the cantilever between a first stable state and a second stable state, wherein only temporary application of the second magnetic field is required to change direction of the magnetization vector thereby causing the cantilever to switch between the first stable state and the second stable state.
- 21. The method of claim 20, wherein the three-dimensional solenoid coil includes a coil line wrapped around a magnetic core at least once, wherein step (C) comprises the steps of:
applying a first current to the coil line to flow through the coil line in a first direction around the magnetic core to cause the cantilever to switch to the first stable state; and applying a second current to the coil line to flow through the coil line in a second direction around the magnetic core to cause the cantilever to switch to the second stable state.
- 22. The method of claim 20, further comprising the step of:
(D) allowing an input signal line to couple to an output signal line through a conducting layer of the cantilever when in the first stable state.
- 23. The method of claim 22, further comprising the step of:
(E) allowing the input signal line to decouple from the output signal line when the cantilever switches to the second stable state.
- 24. The method of claim 22, further comprising the step of:
(E) allowing a second input signal line to couple to a second output signal line through the conducting layer of the cantilever when in the second stable state.
- 25. The method of claim 24, further comprising the steps of:
(F) allowing the first input signal line to decouple from the first output signal line when the cantilever switches to the second stable state; and (G) allowing the second input signal line to decouple from the second output signal line when the cantilever switches to the first stable state.
- 26. A system for operating a micro-machined magnetic latching switch, comprising:
moveable element means that includes a magnetic material and a longitudinal axis; means for supporting the moveable element means; means for producing a permanent magnetic field, which thereby induces a magnetization in the magnetic material, the magnetization characterized by a magnetization vector pointing in a direction along the longitudinal axis of the moveable element means, the permanent magnetic field being approximately perpendicular to the longitudinal axis; and three-dimensional solenoid coil means, wherein the three-dimensional solenoid coil means produces a second magnetic field to switch the moveable element means between a first stable state and a second stable state, wherein only temporary application of the second magnetic field is required to change direction of the magnetization vector thereby causing the moveable element means to switch between the first stable state and the second stable state.
- 27. A method for assembling a micro-machined magnetic latching switch, comprising the steps of:
(A) supporting a cantilever, wherein the cantilever includes a magnetic material and a longitudinal axis; (B) positioning a permanent magnet closely adjacent to the cantilever such that a permanent magnetic field produced by the permanent magnet induces a magnetization in the magnetic material, the magnetization characterized by a magnetization vector pointing in a direction along the longitudinal axis of the cantilever, the permanent magnetic field being approximately perpendicular to the longitudinal axis; and (C) positioning a three-dimensional solenoid coil closely adjacent to the cantilever.
- 28. The method of claim 27, wherein the three-dimensional solenoid coil includes a magnetic core and a coil line, further comprising the step of:
(D) configuring the coil line to wrap around the magnetic core at least once.
- 29. The method of claim 28, wherein the three-dimensional solenoid coil includes a first layer, a second layer, and a third layer, wherein step (D) comprises the steps of:
positioning the magnetic core in the second layer between the first layer and the third layer; wrapping the coil line around the magnetic core such that the coil line passes through the first layer in a first direction and through the third layer in a second direction.
- 30. The method of claim 29, further comprising the steps of:
(E) insulating a portion of the coil line that passes through the first layer in the first layer; and (F) insulating a portion of the coil line that passes through the third layer in the third layer.
- 31. The method of claim 27, further comprising the step of:
(D) attaching a magnetic layer to the three-dimensional solenoid coil.
- 32. The method of claim 27, further comprising the step of:
(D) positioning the cantilever between the three-dimensional solenoid coil and the permanent magnet.
- 33. The method of claim 32, wherein step (A) comprises the step of:
supporting the cantilever on a surface of the three-dimensional solenoid coil.
- 34. The method of claim 32, further comprising the step of:
(E) attaching a substrate to the permanent magnet.
- 35. The method of claim 34, wherein step (A) comprises the step of:
supporting the cantilever on a surface of the substrate.
- 36. The method of claim 35, further comprising the step of:
(F) forming the input signal line and the output signal line on the substrate.
- 37. The method of claim 27, wherein step (C) comprises the step of:
positioning the three-dimensional solenoid coil between the cantilever and the permanent magnet.
- 38. The method of claim 37, wherein step (A) includes the step of:
supporting the cantilever on a surface of the three-dimensional solenoid coil.
- 39. The method of claim 38, further comprising the step of:
(D) forming the input signal line and the output signal line on a surface of the three-dimensional solenoid coil.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of application Ser. No. 10/051,447, filed Jan. 8, 2002, which is herein incorporated by reference in its entirety.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
10051447 |
Jan 2002 |
US |
| Child |
10216663 |
Aug 2002 |
US |