Picosecond electrical excitation of ultrafast magnetization dynamics in ferro- and ferrimagnetic metals

 · Invited

Abstract

When electrons in a magnetic metal are driven far from equilibrium via ultrafast heating of the electrons, the magnetic order undergoes radical changes within tens of femtoseconds due to massive flows of energy and angular momentum between electrons, spins, and phonons. In ferrimagnetic metals such as GdFeCo, ultrafast optical heating can deterministically reverse the magnetization in less than a picosecond. In this talk, I describe our experimental work to gain a better understanding of how energy is exchanged between electrons, phonon, and spins in a magnetic metal following ultrafast heating. We use time-resolved measurements of the magneto-optic Kerr effect to record the response of ferro- and ferri-magnetic metals to heating via ultrafast optical or electrical pulses. Picosecond electrical pulses are generated with photoconductive Auston switches. By comparing the magnetic dynamics that result from electrical vs. optical heating, we identify differences in the rate of energy transfer to phonons from thermal vs. nonthermal electrons. We also find that both optical and electrical heating are effective for ultrafast switching of ferrimagnetic metals. We observe deterministic, repeatable ultrafast reversal of the magnetization of a GdFeCo thin film with a single sub-10 ps electrical pulse. The magnetization reverses in ~10 ps, which is more than one order of magnitude faster than other electrically controlled magnetic switching mechanisms.

*This work was supported by the NSF Center for Energy Efficient Electronics and by the Director, Office of Science, Office of Basic Energy Sciences, Materials Sciences and Engineering Division, of the U.S. Department of Energy under contract no. DE-AC02-05-CH11231 within the Nonequilibrium Magnetic Materi

Presenters

  • Richard Wilson

    • Materials Science and Engineering, University of California Riverside

Authors

  • Richard Wilson

    • Materials Science and Engineering, University of California Riverside
  • Yang Yang

    • Materials Science, University of California, Berkeley
  • Jon Gorchon

    • EECS, University of California Berkeley
  • Charles-Henri Lambert

    • University of California, Berkeley
    • EECS, University of California Berkeley
  • Sayeef Salahuddin

    • University of California, Berkeley
    • EECS, University of California Berkeley
  • Jeffrey Bokor

    • University of California
    • EECS, UC Berkeley
    • Department of Electrical Engineering and Computer Science, University of California, Berkeley
    • EECS, University of California Berkeley