2 research outputs found
Contributions from coherent and incoherent lattice excitations to ultrafast optical control of magnetic anisotropy of metallic films
Spin-lattice coupling is one of the most prominent interactions mediating response of spin ensemble to ultrafast optical excitation. Here we exploit optically generated coherent and incoherent phonons to drive coherent spin dynamics, i.e. precession, in thin films of magnetostrictive metal Galfenol. We demonstrate unambiguously that coherent phonons, also seen as dynamical strain generated due to picosecond lattice temperature raise, give raise to magnetic anisotropy changes of the optically excited magnetic film; and this contribution may be comparable to or even dominate over the contribution from the temperature increase itself, considered as incoherent phonons
Coherent acoustic phonons in colloidal semiconductor nanocrystal superlattices
The
phonon properties of films fabricated from colloidal semiconductor
nanocrystals play a major role in thermal conductance and electron
scattering, which govern the principles for building colloidal-based
electronics and optics including thermoelectric devices with a high <i>ZT</i> factor. The key point in understanding the phonon properties
is to obtain the strength of the elastic bonds formed by organic ligands
connecting the individual nanocrystallites. In the case of very weak
bonding, the ligands become the bottleneck for phonon transport between
infinitively rigid nanocrystals. In the opposite case of strong bonding,
the colloids cannot be considered as infinitively rigid beads and
the distortion of the superlattice caused by phonons includes the
distortion of the colloids themselves. We use the picosecond acoustics
technique to study the acoustic coherent phonons in superlattices
of nanometer crystalline CdSe colloids. We observe the quantization
of phonons with frequencies up to 30 GHz. The frequencies of quantized
phonons depend on the thickness of the colloidal films and possess
linear phonon dispersion. The measured speed of sound and corresponding
wave modulus in the colloidal films point on the strong elastic coupling
provided by organic ligands between colloidal nanocrystals