Afanasiev D, Hortensius J R, Ivanov B A, Sasani A, Bousquet E, Blanter Y M, Mikhaylovskiy R V, Kimel A V, Caviglia A D
Kavli Institute of Nanoscience, Delft University of Technology, Delft, the Netherlands.
Institute of Magnetism, National Academy of Sciences and Ministry of Education and Science, Kiev, Ukraine.
Nat Mater. 2021 May;20(5):607-611. doi: 10.1038/s41563-021-00922-7. Epub 2021 Feb 8.
Resonant ultrafast excitation of infrared-active phonons is a powerful technique with which to control the electronic properties of materials that leads to remarkable phenomena such as the light-induced enhancement of superconductivity, switching of ferroelectric polarization and ultrafast insulator-to-metal transitions. Here, we show that light-driven phonons can be utilized to coherently manipulate macroscopic magnetic states. Intense mid-infrared electric field pulses tuned to resonance with a phonon mode of the archetypical antiferromagnet DyFeO induce ultrafast and long-living changes of the fundamental exchange interaction between rare-earth orbitals and transition metal spins. Non-thermal lattice control of the magnetic exchange, which defines the stability of the macroscopic magnetic state, allows us to perform picosecond coherent switching between competing antiferromagnetic and weakly ferromagnetic spin orders. Our discovery emphasizes the potential of resonant phonon excitation for the manipulation of ferroic order on ultrafast timescales.
红外活性声子的共振超快激发是一种强大的技术,可用于控制材料的电子特性,从而引发显著现象,如光致超导增强、铁电极化切换以及超快绝缘体到金属的转变。在此,我们表明光驱动声子可用于相干操纵宏观磁态。将强中红外电场脉冲调谐至与典型反铁磁体DyFeO的一种声子模式共振,可诱导稀土轨道与过渡金属自旋之间基本交换相互作用的超快且持久的变化。对定义宏观磁态稳定性的磁交换进行非热晶格控制,使我们能够在竞争的反铁磁和弱铁磁自旋序之间进行皮秒级相干切换。我们的发现强调了共振声子激发在超快时间尺度上操纵铁性序的潜力。