Determination of electronic structure parameters for different halides in CrX<sub>3</sub> (X = Cl, Br, and I) using High-resolution X-ray Scattering
ORAL
Abstract
Chromium tri-halides CrX3 (X = Cl, Br, and I) exhibit low-temperature, layer-dependent magnetic properties that can be manipulated by external stimuli, making them essential candidates for spintronics applications. Their magnetic ground states depend keenly on electronic parameters such as spin-orbit coupling (SOC), Hund’s coupling (JH), p−d covalency, and interorbital Coulomb interactions. Accurately determining these parameters is paramount for understanding the CrX3 physics. We have used high-resolution resonant inelastic X-ray scattering (RIXS) spectroscopy to study CrX3 across phase transition temperatures. Ligand field multiplet calculations were used to determine the electronic structure parameters by incorporating the crystal field interactions in a distorted octahedral orientation with C3 symmetry. The crystal field distortion parameters Dσ and Dτ, and the energies of d orbitals, have been reported. The measurements reveal an energy separation between spin-allowed quartet states and spin-forbidden doublet states, which increases from CrCl3 to CrI3. The determined 10Dq values are in good agreement with the spectrochemical series; the Racah B parameter follows the expected Nephelauxetic effect. This study validates the role of SOC in Cr 2p spin-flip excitations. Such precise measurements offer insights into the energy design of spintronic devices that utilize quantum state tuning and the effect of halides in determining spin-flip excitation energies in 2D magnets.
*Y.C.S. acknowledges the financial support from the National Science and Technology Council (NSTC) in Taiwan under grant numbers 113-2112-M-213-025-MY3. The Welch Foundation(grant number: E-0001) and the Texas Center for Superconductivity (TCSUH) supported work at the University of Houston. Part of this work was supported by the U.S. DOE, BES, under Award No. DE-SC0024332. The authors acknowledge support from the U.S. Air Force Office of Scientific Research and Clarkson Aerospace Corp. under Award FA9550-21-1-0460.
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Publication: arXiv preprint arXiv:2504.04053
Presenters
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Chamini S Pathiraja
- University of Houston