Saved in:
Bibliographic Details
Main Authors: Khansili, A., Huang, Y. -C., Häussermann, U., Gomez, C. Pay, Rydh, A.
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2409.04279
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915207057506304
author Khansili, A.
Huang, Y. -C.
Häussermann, U.
Gomez, C. Pay
Rydh, A.
author_facet Khansili, A.
Huang, Y. -C.
Häussermann, U.
Gomez, C. Pay
Rydh, A.
contents Rare-earth element containing aperiodic quasicrystals and their related periodic approximant crystals can exhibit non-trivial physical properties at low temperatures. Here, we investigate the 1/1 and 2/1 approximant crystal phases of the Ce-Au-Al system by studying the ac-susceptibility and specific heat at low temperatures and in magnetic fields up to 12 T. We find that these systems display signs of quantum criticality similar to the observations in other claimed quantum critical systems, including the related Yb-Au-Al quasicrystal. In particular, the ac-susceptibility at low temperatures shows a diverging behavior $χ\propto 1/T$ as the temperature decreases as well as cutoff-behavior in magnetic field. Notably, the field dependence of $χ$ closely resembles that of quantum critical systems. However, the ac-susceptibility both in zero and nonzero magnetic fields can be understood from the splitting of a ground state Kramers doublet of Ce$^{3+}$. The high-temperature Curie-Weiss fit yields an effective magnetic moment of approximately 2.54$μ_{\mathrm{B}}$ per Ce for both approximant systems, which is reduced to $\sim$2.0$μ_{\mathrm{B}}$ at temperatures below 10 K. The low-temperature specific heat is dominated by the Schottky anomaly originating from the splitting of the Ce$^{3+}$ Kramers doublet, resulting in an entropy of $R\ln 2$ at around 10 K.
format Preprint
id arxiv_https___arxiv_org_abs_2409_04279
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Precursor to Quantum Criticality in Ce-Au-Al Quasicrystal Approximants
Khansili, A.
Huang, Y. -C.
Häussermann, U.
Gomez, C. Pay
Rydh, A.
Strongly Correlated Electrons
Rare-earth element containing aperiodic quasicrystals and their related periodic approximant crystals can exhibit non-trivial physical properties at low temperatures. Here, we investigate the 1/1 and 2/1 approximant crystal phases of the Ce-Au-Al system by studying the ac-susceptibility and specific heat at low temperatures and in magnetic fields up to 12 T. We find that these systems display signs of quantum criticality similar to the observations in other claimed quantum critical systems, including the related Yb-Au-Al quasicrystal. In particular, the ac-susceptibility at low temperatures shows a diverging behavior $χ\propto 1/T$ as the temperature decreases as well as cutoff-behavior in magnetic field. Notably, the field dependence of $χ$ closely resembles that of quantum critical systems. However, the ac-susceptibility both in zero and nonzero magnetic fields can be understood from the splitting of a ground state Kramers doublet of Ce$^{3+}$. The high-temperature Curie-Weiss fit yields an effective magnetic moment of approximately 2.54$μ_{\mathrm{B}}$ per Ce for both approximant systems, which is reduced to $\sim$2.0$μ_{\mathrm{B}}$ at temperatures below 10 K. The low-temperature specific heat is dominated by the Schottky anomaly originating from the splitting of the Ce$^{3+}$ Kramers doublet, resulting in an entropy of $R\ln 2$ at around 10 K.
title Precursor to Quantum Criticality in Ce-Au-Al Quasicrystal Approximants
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2409.04279