Identification of spin wave resonances and crystal field transitions in simple chromites RCrO3 (R=Pr, Sm, Er) at ultralow temperatures in the THz spectral region
N\'estor E. Massa, Karsten Holldack, Rodolphe Sopracase, Vinh Ta, Phuoc, Leire del Campo, Patrick Echegut, and Jos\'e Antonio Alonso

TL;DR
This study uses THz spectroscopy and high magnetic fields to investigate spin wave resonances and crystal field transitions in RCrO3 chromites at ultralow temperatures, revealing how rare earth ions influence magnetic excitations.
Contribution
It provides new insights into the magnetic excitations and crystal field levels in RCrO3 chromites, highlighting the effects of rare earth ions and temperature on spin wave modes.
Findings
Spin wave resonances depend on temperature and rare earth ion properties.
PrCrO3 shows no spin wave resonances due to paramagnetic Pr3+ ions.
ErCrO3 exhibits Zeeman splitting and spin reversal phenomena.
Abstract
We report on THz absorption spectroscopy combined with high magnetic fields of polycrystalline RCrO3 (R= Pr, Sm, Er) aiming understanding spin wave resonances at their low temperature magnetic phases. Our measurements show that the temperature, and the implicit anisotropies at which the Cr3+ spin reorientation at TSR takes place, are determinant on the ferromagnetic-like (FM) and the antiferromagnetic-like (AFM) spin modes being optically active. It is found that they are dependent on Rare Earth 4f moment and ion size. We also studied temperature and field dependence of crystal field levels in the same spectroscopic region. Pr3+ non-Kramers emerges at 100 K and Zeeman splits. An observed absence of spin wave resonances in PrCrO3 is attributed to Pr3+ remaining paramagnetic. In SmCrO3 near cancelation of the spin and orbital moments is proposed as the possible reason for not detecting…
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