The present application claims priority to Singapore Patent Application No. 10201606203Q, titled High Efficiency Spin Torque Switching Using a Ferrimagnet, filed Jul. 27, 2016 by Applicant National University of Singapore, the contents of which are incorporated by reference herein in their entirety.
The present disclosure relates generally to spin torque devices (e.g., spin transfer torque (STT) or spin-orbit torque (SOT) devices), and more specifically, to techniques for improving thermal stability, external magnetic field resistance and switching efficiency in spin torque devices.
Spin torque devices, such as spin torque magnetic random access memory (MRAMs), manipulate magnetization directions in a magnetic tunnel junction or spin valve to store information or for other purposes. Magnetization direction may be manipulated using current-induced STT. STT techniques have advanced over a number of years, and STT MRAMs soon will be commercially available. Magnetization manipulation may also be achieved via current-induced SOT. While not yet at the point of commercial viability, SOT MRAM may represent the future of MRAM.
Spin torque devices are typically structured as a stack that includes a ferromagnet (FM) layer. For example, a typical SOT device stack includes a thin (e.g., <1 nm) FM layer (e.g., a layer of nickel-cobalt (Ni—Co) or other ferromagnetic material) adjacent a heavy metal (HM) layer (e.g., a layer of tantalum (Ta), platinum (Pt), or other metal). When an in-plane input current is applied to the SOT device, a spin current from the HM layer diffuses into the FM layer and influences the magnetization direction of the FM. Likewise, in a typical STT device, spin polarized electrons, which influence the magnetization of a FM layer, are generally supplied by another FM layer. Such influence may reverse the magnetization direction, effectively “switching” the SOT device or STT device.
For practical applications, efforts should be put to reduce the switching current of STT and SOT devices while maintaining reasonable thermal stability and external magnetic field resistance. However, most of the work up until now generally utilize a thin (e.g., <1-2 nm) FM layer. Therefore, sufficient thermal stability and external magnetic field resistance generally have not been achieved to make the resulting devices viable under practical (i.e. real world) operational conditions. In addition, achieved switching efficiency has still been lower than desired (that is, the required switching current is still higher than desired).
Accordingly, there is a need for techniques that may improve thermal stability, external magnetic field resistance and switching efficiency in spin torque devices.
Improved thermal stability, external magnetic field resistance and switching efficiency may be achieved in spin torque device by using a thick (e.g., >1 nm, and preferably >=2-6 nm) ferrimagnet (FIM) layer, instead of a thin (e.g., <1-2 nm) FM layer in the device's stack. The FIM layer may be composed of a cobalt-gadolinium (Co—Gd) alloy, cobalt-terbium (Co—Tb) multilayers, or other materials that provide anti-ferromagnetic coupling between two sub-lattices. Bulk perpendicular magnetic anisotropy (PMA) of the FIM may aid in depositing a thick film, and such thickness may provide increased thermal stability. The FIM may also be resilient to external magnetization due to its intrinsic high anisotropy, because of the negative exchange interaction between the two sub-lattices. Further, the negative exchange interaction between the two sub-lattices of the FIM may allow for low current switching. For example, an SOT device utilizing a FIM layer may be an order of magnitude (e.g., 20 times) more efficient in a traditional FM-based SOT device. The use of a FIM layer may improve the STT devices (e.g., STT MRAM) that are soon to be commercially available, and may help render SOT device (e.g., SOT MRAM) more commercially viable.
It should be understood that a variety of additional features and alternative embodiments may be implemented other than those discussed in this Summary. This Summary is intended simply as a brief introduction to the reader, and does not indicate or imply that the examples mentioned herein cover all aspects of the disclosure, or are necessary or essential aspects of the disclosure.
The description below refers to the accompanying drawings of example embodiments, of which:
For comparative purposes, the SOT devices 100, 150 may be compared to a SOT device (not shown) that utilizes an FM layer. Such an example of FM-based SOT device may include a substrate, a first spacer layer (e.g., 2 nm of Magnesium Oxide (MgO)), an HM layer (e.g., 4 nm of Pt) that serves as a spin current source, a multilayer FM layer (e.g., 0.1 nm Nickel (Ni) and 0.1 nm Co as a bilayer pair, with a repetition of the bilayer pair of number N), a second spacer layer (e.g., 2 nm of MgO), and a capping layer (e.g., of SiO2).
In conclusion, use of a thick (e.g., >1-2 nm, and preferably >=2-6 nm) FIM layer, instead of a thin (e.g., <1-2 nm) FM layer, in a spin torque device may improve thermal stability, external magnetic field resistance and switching efficiency. While Co—Gd alloy and Co—Tb multilayers are discussed above as examples of FIM materials that may be used, it should be understood that a wide variety of other FIM materials may be employed. Further, while SOT devices, such as SOT MRAMs, were discussed as an example of one type of spin torque device a FIM layer may be used to advantage in, it should be remembered that a FIM layer may be used to advantage in other types of spin torque devices, including STT devices, such as STT MRAMs. In general, it should be understood that a wide variety of adaptations and modifications may be made to the above-discussed techniques. It should be appreciated that details included in the various example embodiments are merely provided for purposes of illustration, and are not intended to limit the scope, applicability, or configuration of the invention. For example, it should be understood that the various elements described above may be made from differing materials, implemented in different combinations or otherwise formed or used differently without departing from the intended scope of the invention.
Number | Date | Country | Kind |
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10201606203Q | Jul 2016 | SG | national |
Number | Name | Date | Kind |
---|---|---|---|
8687415 | Parkin et al. | Apr 2014 | B2 |
8742518 | Wang et al. | Jun 2014 | B2 |
9025371 | Huai et al. | May 2015 | B1 |
9691458 | Ralph | Jun 2017 | B2 |
20030063491 | Ikeda | Apr 2003 | A1 |
20070074317 | Pakala | Mar 2007 | A1 |
20120020152 | Gaudin | Jan 2012 | A1 |
20150200003 | Buhrman | Jul 2015 | A1 |
20150303373 | Chen et al. | Oct 2015 | A1 |
20150372222 | Gajek et al. | Dec 2015 | A1 |
20160225424 | Qiu et al. | Aug 2016 | A1 |
20160276006 | Ralph | Sep 2016 | A1 |
20170200486 | Qiu et al. | Jul 2017 | A1 |
20170249981 | Nebashi | Aug 2017 | A1 |
20180040357 | Shirotori | Feb 2018 | A1 |
Entry |
---|
Finley, J., et al., “Spin-Orbit Torque Efficiency in Compensated Ferrimagnetic Cobalt-Terbium Alloys,” Physical Review Applied, 6, 54001, Oct. 2016, pp. 1-14. |
U.S. Appl. No. 15/458,196, filed Mar. 14, 2017 by Jungbum Yoon, et al. For a Techniques to Improve Switching Probability and Switching Speed in SOT Devices, pp. 1-52. |
Ichimura, M., et al., “ Spin Transfer Torque in MTJs with Synthetic Ferrimagnetic Layers by the Keldysh Approach,” American Institute of Physics, Journal of Applied Physics, vol. 109, Mar. 23, 2011, pp. 1-4. |
Jabeur, K., et al, “Study of Spin Transfer Torque (STT) and Spin Orbit Torque (SOT) Magnetic Tunnel Junctions (MTJS) at Advanced CMOS Technology Nodes,” Electrical and Electronics Engineering: An International Journal (ELELIJ), vol. 6, No. 1, Feb. 2017, pp. 1-9. |
Kurt, H., et al., “Mn3-xGa (0≤ × ≤1): Multifunctional Thin Film Materials for Spintronics and Magnetic Recording,” Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim, Wiley Online Library, Physica Status Solidi B, vol. 248, No. 10, Apr. 18, 2011, pp. 2338-2011. |
Lotze, Johannes R. K., “Spin Pumping in Ferrimagnet/Normal Metal Bilayers,” Technische Universität München,TUM: The Entrepreneurial University, Dissertation, Jul. 2, 2015, pp. 1-134. |
Roschewsky, Niklas, et al., “Spin-Orbit Torques in Ferrimagnetic GdFeCo Alloys,” Applied Physics Letters, vol. 109, Issue 11, May 31, 2016, pp. 1-4. |
Number | Date | Country | |
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20180033956 A1 | Feb 2018 | US |