EP1548702A1

Method for ultra-fast controlling of a magnetic cell and related devices

Abstract

The present invention relates to a device and corresponding method for ultrafast controlling of the magnetization of a magnetic element. A device (100) includes a surface acoustic wave generating means (102), a transport layer (104), which is typically functionally and partially structurally comprised in said SAW generating means (102), and at least one ferromagnetic element (106). A surface acoustic wave is generated and propagates in a transport layer (104) which typically consists of a piezo-electric material. Thus, strain is induced in the transport layer (104) and in the ferromagnetic element (106) in contact with this transport layer (104). Due to magneto elastic coupling this generates an effective magnetic field in the ferromagnetic element (106). If the surface acoustic wave has a frequency substantially close to the ferromagnetic resonance (FMR) frequency νFMR the ferromagnetic element (106) is absorbed well and the magnetisation state of the element can be controlled with this FMR frequency. The device can be used in an RF-magnetic resonator, a sensor and a camera. The corresponding method can be used for ultrafast reading-out and switching of magnetic components and in magnetic logic.

EP1548702A1, drawing sheet 1
Sheet 1 of 12

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Projected expiry passed 24 December 2023, 2.8 years ago.

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33 claims: 14 independent, 19 dependent

  1. 1
    A device (100) allowing magnetic property interaction, comprising a layer comprising piezoelectric material and at least one ferromagnetic element and means for magneto-elastic energy conversion between the ferromagnetic element and a surface acoustic wave in the layer comprising piezoelectric material to interact with the magnetisation state of the ferromagnetic element.
  2. 5
    A device (100) according to any of the claims 2 to 4, wherein said surface acoustic wave generating means (102) comprises part of said transport layer (104).
  3. 6
    A device (100) according to any of the previous claims wherein the propagated surface acoustic wave creates an effective magnetic field due to magneto-striction in said ferromagnetic element (106) so as to manipulate a magnetic property of said ferromagnetic element (106).
  4. 8
    A device (100) according to any of previous claim, wherein said ferromagnetic element (106) is a functional or structural part of a magnetic component (200).
  5. 10
    A device (100) according to any of claims 6 to 9, whereby the angle between the direction of an easy axis of said ferromagnetic element (106) and the direction of said effective magnetic field is different from 0°, preferably is larger than 45°, more preferably is larger than 80°, most preferably is 90°.
  6. 11
    A device (100) according to any of the claims 2 to 10, whereby said surface acoustic wave generating means (102) is at least one Inter Digitated Transducer.
  7. 12
    A device (100) according to any of the claims 2 to 11, whereby said device has a further surface acoustic wave generating means (402).
  8. 15
    A device (100) according to any of the previous claims, whereby said device has for at least one surface acoustic wave generating means (102) a surface acoustic wave detection means positioned opposed to said saw generating means relatively to said ferromagnetic element.
  9. 16
    A device (100) according to any of the claims 2 to 15, comprising a plurality of ferromagnetic elements (106) ordered on top of said transport layer (104).
  10. 17
    A method for sensing an environmental parameter, said method comprising the steps of - allowing at least one ferromagnetic element (106) of a device (100) according to any of claims 8 to 16 to interact with an environment of which a environmental quantity has to be measured - generating a surface acoustic wave in the transport layer (104) of said device (100) - dynamically measuring the variation in magneto-resistance of said ferromagnetic component (106) - deriving from said variation in magneto-resistance a corresponding value of said quantity.
  11. 19
    A method according to any of claims 16 to 18, whereby said variation in magneto-resistance of said at least one ferromagnetic element (106) is induced by the magnetisation or magnetisation direction of said ferromagnetic element (106).
  12. 22
    A method for reading out a readout-value from a device (100) according to any of claims 8 to 16 comprising the steps of - generating a surface acoustic wave, such that a precessional movement of the magnetisation in said at least one ferromagnetic element (106) is achieved and said magnetisation state of said at least one ferromagnetic element (106) is not switched, - dynamically measuring the variation in magneto-resistance of said component, - deriving from said variation in magneto-resistance said read-out value
  13. 24
    A method according to claims 22 or 23, whereby said read-out value can correspond with only a number of distinct specific values.
  14. 25
    A method for switching a device (100) according to any of claims 8 to 16, comprising the step of generating a surface acoustic wave, for achieving a precessional movement of the magnetisation in said ferromagnetic element (106) and orienting said magnetisation state of said ferromagnetic element (106).
  15. 26
    A method for switching according to the claim 25, wherein said orienting of said magnetisation state of said ferromagnetic element (106) is performed by generating a ferromagnetic element (106) specific additional field.
  16. 28
    A method for using a device according to any of claims 12 to 16, for combined reading an writing, whereby said first surface acoustic wave generating means (102) is used for switching according to the method of any of claims 25 to 27 and said second SAW generating means (402) is used for sensing or reading according to the method of any of claims 17 to 19 or 22 to 24.
  17. 29
    A magnetic resonator (500) comprising a device (100) according to any of claims 1 to 16 and a tip (504), said tip (504) being made of magnetic material and supported by a cantilever-type (506) structure and furthermore being positioned near the ferromagnetic element (502) of said device (100).
  18. 30
    The use of a device (100) according to any of claims 1 to 16 for use in magnetic logic, whereby the application of a surface acoustic wave is the driving force of the magnetic logic.
  19. 31
    A method for active tuning of a working frequency of a surface acoustic wave in a device (100) according to any of claims 1 to 16, furthermore comprising a surface acoustic wave detection means, said method comprising the steps - monitoring the absorption of a surface acoustic wave by the ferromagnetic element (106) - deriving from said absorption characteristics the difference between the working frequency of the surface acoustic wave and the ferromagnetic resonance frequency of said ferromagnetic element (106), - tuning the working frequency of the surface acoustic wave generating means towards the ferromagnetic resonance frequency.
Independent claims19