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Defense Intelligence Reference Document Metallic Spintronics

Defense Intelligence Agency · 27 pages · text from the file's own layer

This Defense Intelligence Reference Document, dated 23 March 2010 and produced by the Defense Intelligence Agency under its Advanced Aerospace Weapon System Applications (AAWSA) program, is a technical report on metallic spintronics. It explains giant magnetoresistance, spin-transfer torque and antiferromagnetic spintronics, along with their uses in sensors, hard drive read heads and magnetic memory. It concludes that spintronic devices could enable low-power, radiation-resistant electronics suited to aerospace and long space missions.

  • p. 6 …make this technique favorable for growth of highly oriented single-crystalline films. The original observation of…
  • p. 7 …times greater than those for the permalloy films that were used as magnetoresistive sensors in magnetic…
  • p. 8 …large resistance of a thin film is quite easy (film length is typically orders of magnitude…
  • p. 10 …ferromagnet usually involves two single-domarn thin-film magnets separated by a nonmagnetic spacer. Here one…
  • p. 19 …For small applied currents, neither standard current-in-plane (CIP) MR measurements on extended multilayer films…
  • p. 20 …film at room temperature ( ~ 295K) with negative current flowing from the contact tip into the film…
  • p. 24 …135, 1218 (1988). (27) Ohring, M., The Materials Science of Thin Films (Academic, Boston, 1992). (28…
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Contents
1. Introduction .......................................................................................................... iv
2. Giant Mag netoresistance ..................................................................................... 1
2.1 GMR Basics ••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••••• !!1••···························· 1
2.2 GM.R Applications .........................................~ .......................... ., ........................ 3
3. Spin-Transfer-Torque ......................................................................................... 4
3.1 STT. Basics .................................................................................................................. 4
3.2 STT Experiments ..................................................................................................................... 7
3. 3 STT Appllcat~ons ........................................................................................... 10
3,4 STT-Driven Motion of Magnetic Domain Walls ........................................... 12
4. Antiferromagnetic Metal Sl)lntro..nics ......................................................................•...... 12
4.1 Antiferromagnetic GMR ............................................................................. 13
4. 2 Antlferromag netlc STT................................................."' .................................... 14
5 .. Summary and Conclusion~ ................................................................................... 16
6 .. References .................... ,.................................................................................................. 18
Figures
Figure 1. In a Magnetic Multilayer, Several Atomic Layers of Magnetic Material
Alternate With Layers of Nonmagnetic Material ...................................... 1
Figure 2. Resistance of a Magnetic Multilayer R Versus Magnetic Field .................. 2
Figure 3. Differential Resistance dV/dl of a Mechanical Point Contact as a Fur,ction
of Current for a Series of Magnetic Fields................................................ 4
Figure 4. Device Schematics for STT Experiments ................................................. .
Figure 5. Qualitative Picture of STT ....................................................................................
Figure 6. Torques on a Magnetic Moment In a Magnetic Field and Subject to an
5
6
Electrical Current ....................................................................................... 7
Figure 7. Spin-Torque-Driven Magnetic Switching .................................................. 8
figure 8. Oscillatory Voltage .............................................................................................. 9
Figure 9. Scanning Transmission X-ray Microscopy Images ................................. 10
Figure 10. Conventional MRAM. Cell .............................................................................. 11
Flgu re 11. Racetrack Memory Co nee.pt .................................................................... 12
Figure 12. Schematic of Point Contact to Sample Geometry ................................. 15
iii
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Report, from the dia collection. The PDF is mirrored here; the original link is under it. 27 pages are in the text index: search them above, or from the library's search.