Bereiche | Tage | Auswahl | Suche | Aktualisierungen | Downloads | Hilfe
TT: Fachverband Tiefe Temperaturen
TT 33: Correlated Magnetism – Spin Liquids
TT 33.5: Vortrag
Mittwoch, 19. März 2025, 16:00–16:15, H33
What is carrying the heat in the thermal Hall effect of honeycomb magnets? — •Ralf Claus, Jan Bruin, Yosuke Matsumoto, Pascal Reiss, Akmal Hossain, Lichen Wang, Pascal Puphal, Bernhard Keimer, and Hidenori Takagi — Max-Planck-Institut für Festkörperforschung, D-70569 Stuttgart
The observation of a half-integer quantized thermal Hall effect in the honeycomb magnet α-RuCl3 was interpreted as an experimental hallmark for Kitaev majorana fermions. However, follow-up studies only partly reproduced this result and have offered alternative explanations such as phonons or topological magnons. To narrow down the nature of the heat carrying quasiparticles, we conducted a comparative study of the longitudinal (κxx) and transversal (κxy) heat transport on α-RuCl3 and Na3Co2SbO6 (NCSO). Both share the same crystal symmetries and have comparable magnetic phase diagrams. However, one key difference is that for applied in-plane magnetic fields B>3 T NCSO is in a fully spin-polarized phase convincingly excluding the presence of any majorana fermions. Remarkably, we observed a finite κxy in NCSO up to B≈ 10 T, which displays striking similarities in shape, angle-dependence, and magnitude to that of α-RuCl3. Furthermore, the field dependences of κxx and of the thermal Hall angle (κxy/κxx) across all α-RuCl3 and NCSO samples suggest a substantial phononic contribution to κxy. Ultimately, we propose that topological magnons are responsible for generating the Hall temperature gradient which in turn is significantly enhanced by phonon-magnon interaction.
Keywords: Kitaev; honeycomb magnet; quantum spin liquid; thermal conductivity; thermal Hall effect