4.8 Article

Experimental Demonstration of Complete 180° Reversal of Magnetization in Isolated Co Nanomagnets on, a PMN-PT Substrate with Voltage Generated Strain

期刊

NANO LETTERS
卷 17, 期 6, 页码 3478-3484

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.7b00439

关键词

Straintronics; magneto-elastic switching; nanomagnets; piezoelectric

资金

  1. US National Science Foundation (NSF) [ECCS-1124714, ECCS-1609303]
  2. Semiconductor Research Corporation (SRC) under NRI task [2203.001]
  3. State of Virginia Commonwealth Research Commercialization Fund under the matching fund grant [MF-15-006-MS]
  4. NSF CAREER grant [CCF-1253370]
  5. Direct For Computer & Info Scie & Enginr
  6. Division of Computing and Communication Foundations [1253370] Funding Source: National Science Foundation
  7. Div Of Electrical, Commun & Cyber Sys
  8. Directorate For Engineering [1124714] Funding Source: National Science Foundation

向作者/读者索取更多资源

Rotating the magnetization of a shape anisotropic magnetostrictive nanomagnet with voltage-generated stress/strain dissipates much less energy than most other magnetization rotation schemes, but its application to writing bits in non-volatile magnetic memory has been hindered by the fundamental inability of stress/strain to rotate magnetization by full 180 degrees. Normally, stress/strain can rotate the magnetization of a shape anisotropic elliptical nanomagnet by only up to 90 degrees, resulting in incomplete magnetization reversal. Recently, we predicted that applying uniaxial stress sequentially along two different axes that are not collinear with the major or minor axis of the elliptical nanomagnet will rotate the magnetization by full 180 degrees. Here, we demonstrate this complete 180 degree rotation in elliptical Co-nanomagnets (fabricated on a piezoelectric substrate) at room temperature. The two stresses are generated by sequentially applying voltages to two pairs of shorted electrodes placed on the substrate such that the line joining the centers of the electrodes in one pair intersects the major axis of a nanomagnet at similar to+30 degrees and the line joining the centers of the electrodes in the other pair intersects at similar to -30 degrees. A finite element analysis has been performed to determine the stress distribution underneath the nanomagnets when one or both pairs of electrodes are activated, and this has been approximately incorporated into a micromagnetic simulation of magnetization dynamics to confirm that the generated stress can produce the observed magnetization rotations. This result portends an extremely energy-efficient non-volatile straintronic memory technology predicated on writing bits in nanomagnets with electrically generated stress.

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