Extreme terahertz magnon multiplication induced by resonant magnetic pulse pairs.
Chuankun HuangL LuoMartin MootzJ ShangP ManL SuIlias E PerakisYong-Xin YaoA WuJigang WangPublished in: Nature communications (2024)
Nonlinear interactions of spin-waves and their quanta, magnons, have emerged as prominent candidates for interference-based technology, ranging from quantum transduction to antiferromagnetic spintronics. Yet magnon multiplication in the terahertz (THz) spectral region represents a major challenge. Intense, resonant magnetic fields from THz pulse-pairs with controllable phases and amplitudes enable high order THz magnon multiplication, distinct from non-resonant nonlinearities such as the high harmonic generation by below-band gap electric fields. Here, we demonstrate exceptionally high-order THz nonlinear magnonics. It manifests as 7th-order spin-wave-mixing and 6th harmonic magnon generation in an antiferromagnetic orthoferrite. We use THz two-dimensional coherent spectroscopy to achieve high-sensitivity detection of nonlinear magnon interactions up to six-magnon quanta in strongly-driven many-magnon correlated states. The high-order magnon multiplication, supported by classical and quantum spin simulations, elucidates the significance of four-fold magnetic anisotropy and Dzyaloshinskii-Moriya symmetry breaking. Moreover, our results shed light on the potential quantum fluctuation properties inherent in nonlinear magnons.
Keyphrases
- molecular dynamics
- energy transfer
- single molecule
- density functional theory
- molecularly imprinted
- optical coherence tomography
- computed tomography
- magnetic resonance
- high resolution
- climate change
- risk assessment
- mass spectrometry
- simultaneous determination
- solid state
- tandem mass spectrometry
- solid phase extraction