Spin-phonon coupling and dynamic zero-field splitting contributions to spin conversion processes in iron(II) complexes.

J Chem Phys

Division of Chemistry and Chemical Engineering, Arthur Amos Noyes Laboratory of Chemical Physics, California Institute of Technology, Pasadena, California 91125, USA.

Published: May 2020

Magnetization dynamics of transition metal complexes manifest in properties and phenomena of fundamental and applied interest [e.g., slow magnetic relaxation in single molecule magnets, quantum coherence in quantum bits (qubits), and intersystem crossing (ISC) rates in photophysics]. While spin-phonon coupling is recognized as an important determinant of these dynamics, additional fundamental studies are required to unravel the nature of the coupling and, thus, leverage it in molecular engineering approaches. To this end, we describe here a combined ligand field theory and multireference ab initio model to define spin-phonon coupling terms in S = 2 transition metal complexes and demonstrate how couplings originate from both the static and dynamic properties of ground and excited states. By extending concepts to spin conversion processes, ligand field dynamics manifest in the evolution of the excited state origins of zero-field splitting (ZFS) along specific normal mode potential energy surfaces. Dynamic ZFSs provide a powerful means to independently evaluate contributions from spin-allowed and/or spin-forbidden excited states to spin-phonon coupling terms. Furthermore, ratios between various intramolecular coupling terms for a given mode drive spin conversion processes in transition metal complexes and can be used to analyze the mechanisms of ISC. Variations in geometric structure strongly influence the relative intramolecular linear spin-phonon coupling terms and will define the overall spin state dynamics. While the findings of this study are of general importance for understanding magnetization dynamics, they also link the phenomenon of spin-phonon coupling across fields of single molecule magnetism, quantum materials/qubits, and transition metal photophysics.

Download full-text PDF

Source
http://dx.doi.org/10.1063/5.0006361DOI Listing

Publication Analysis

Top Keywords

spin-phonon coupling
24
transition metal
16
coupling terms
16
spin conversion
12
conversion processes
12
metal complexes
12
zero-field splitting
8
magnetization dynamics
8
single molecule
8
ligand field
8

Similar Publications

Developing molecular spin technologies requires microscopic knowledge of their spin-dynamics. Calculation of phonon modes, phonon scattering and spin-phonon coupling for a dysprosocenium single-molecule magnet (SMM) give simulations of spin-dynamics that agree with experiment. They show that low-energy phonon scattering is a significant contribution to the high-performance of dysprosocenium SMMs.

View Article and Find Full Text PDF

With the help of a microscopic model and Green's function technique, we studied the multiferroic and phonon properties of the recently reported new multiferroic PrFeAlO (PFAO) compound, which belongs to the double perovskite ABB'O family. The magnetization decreases with the increase in temperature and disappears at the ferromagnetic Curie temperature TCFM. The polarization increases with the application of an external magnetic field, indicating strong magnetoelectric coupling and confirming the multiferroic behavior of PFAO.

View Article and Find Full Text PDF

Dynamics of magnetic inhomogeneity in LaCoMnO films probed by Raman spectroscopy.

Spectrochim Acta A Mol Biomol Spectrosc

January 2025

Coordenação de Ciências Naturais, Universidade Federal do Maranhão, Centro de Ciências de Bacabal, Bacabal, Maranhão 65700-000, Brazil. Electronic address:

We report the dynamic effects of magnetic inhomogeneity on the temperature evolution of the Raman modes in polycrystalline LaCoMnO (LCMO) films. The LCMO films were obtained via chemical solution deposition and annealed at different temperatures, 700, 800 and 900 °C. Temperature-dependent Raman spectroscopic studies uncover anomalous phonon energy behaviors, associated with strong spin-phonon couplings revealed even at ambient conditions.

View Article and Find Full Text PDF
Article Synopsis
  • Raman scattering is highlighted as a powerful tool for studying the dynamics of lattice, spin, and charge processes in magnetic materials, allowing researchers to analyze quasiparticles like magnons and fractionalized excitations.
  • The review provides background on these quasiparticles and explains how they can be detected through temperature-dependent Raman scattering techniques, along with methods to estimate magnetic interactions.
  • Examples of magnetic materials investigated include antiferromagnetic SrIrO, LaCuO, and ferromagnetic CrI monolayers, demonstrating the versatility of Raman scattering in exploring complex quantum behaviors in various systems.
View Article and Find Full Text PDF

In this paper, we report a complex magnetic behavior arising due to the interplay of three active magnetic cations (Nd/Sm, Co and Ir), forming 3d-5d-4f magnetic sublattices. The B-site ordered double perovskites NdCoIrOand SmCoIrOwere successfully prepared by conventional solid-state method. Detailed structural analysis revealed that both samples crystallized in monoclinic structure with P2/n (No.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!