English

Resonant torsion magnetometry in anisotropic quantum materials

Strongly Correlated Electrons 2018-10-09 v1

Abstract

Unusual behavior of quantum materials commonly arises from their effective low-dimensional physics, which reflects the underlying anisotropy in the spin and charge degrees of freedom. Torque magnetometry is a highly sensitive technique to directly quantify the anisotropy in quantum materials, such as the layered high-Tc_c superconductors, anisotropic quantum spin-liquids, and the surface states of topological insulators. Here we introduce the magnetotropic coefficient k=2F/θ2k=\partial^2 F/\partial \theta^2, the second derivative of the free energy F with respect to the angle θ\theta between the sample and the applied magnetic field, and report a simple and effective method to experimentally detect it. A sub-μ\mug crystallite is placed at the tip of a commercially available atomic force microscopy cantilever, and we show that kk can be quantitatively inferred from a shift in the resonant frequency under magnetic field. While related to the magnetic torque τ=F/θ\tau=\partial F/\partial \theta, kk takes the role of torque susceptibility, and thus provides distinct insights into anisotropic materials akin to the difference between magnetization and magnetic susceptibility. The thermodynamic coefficient kk is discontinuous at second-order phase transitions and subject to Ehrenfest relations with the specific heat and magnetic susceptibility. We apply this simple yet quantitative method on the exemplary cases of the Weyl-semimetal NbP and the spin-liquid candidate RuCl3_3, yet it is broadly applicable in quantum materials research.

Keywords

Cite

@article{arxiv.1802.08211,
  title  = {Resonant torsion magnetometry in anisotropic quantum materials},
  author = {K. A. Modic and Maja D. Bachmann and B. J. Ramshaw and F. Arnold and K. R. Shirer and Amelia Estry and J. B. Betts and Nirmal J. Ghimire and E. D. Bauer and Marcus Schmidt and Michael Baenitz and E. Svanidze and Ross D. McDonald and Arkady Shekhter and Philip J. W. Moll},
  journal= {arXiv preprint arXiv:1802.08211},
  year   = {2018}
}

Comments

7 pages including 6 figures and methods section

R2 v1 2026-06-23T00:30:32.456Z