Sagnac interferometry for high-sensitivity optical measurements of spin-orbit torque
ORAL · Invited
Abstract
We adapt Sagnac interferometry for magneto-optic Kerr effect measurements of spin-orbit-torque-induced magnetic tilting in thin-film magnetic samples. The high sensitivity of Sagnac interferometry permits for the first time optical quantification of spin-orbit torque from small-angle magnetic tilting of samples with perpendicular magnetic anisotropy (PMA). We find significant disagreement between Sagnac measurements and simultaneously-performed harmonic Hall (HH) measurements of spin-orbit torque on Pt/Co/MgO and Pd/Co/MgO samples with PMA. The Sagnac results for PMA samples are consistent with both HH and Sagnac measurements for the in-plane geometry, so we conclude that the conventional analysis framework for PMA HH measurements is flawed. We suggest that the explanation for this discrepancy is that although magnetic-field induced magnetic tilting in PMA samples can produce a strong planar Hall effect, when tilting is instead generated by spin-orbit torque it produces a negligible change in the planar Hall signal. This very surprising result demonstrates an error in the most-popular method for measuring spin-orbit torques in PMA samples, and represents an unsolved puzzle in understanding the planar Hall effect in magnetic thin films. Lastly, I will briefly talk about our effort to use Sagnac to probe heterostructures of vdW insulating magnets at cryogenic temperatures. (arXiv:2109.13759)
*We acknowledge support from National Science Foundation (DMR-1708499), the Cornell Presidential Postdoctoral Fellowship, AFOSR/MURI project 2DMagic (FA9550-19-1-0390), Task 2776.047 of ASCENT, one of six centers in JUMP, a Semiconductor Research Corporation program sponsored by DARPA, and the Agency for Science, Technology and Research (ASTAR), Singapore. We also thank Cornell NanoScale Facility and the Cornell Center for Materials Research (NSF NNCI-1542081, DMR-1719875).
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Presenters
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Yunqiu (Kelly) Luo
- Cornell University