Quantum critical state in a magnetic quasicrystal
Kazuhiko Deguchi, Shuya Matsukawa, Noriaki K. Sato, Taisuke Hattori,, Kenji Ishida, Hiroyuki Takakura, Tsutomu Ishimasa

TL;DR
This paper reports the discovery of quantum critical phenomena in a magnetic quasicrystal, showing divergence in magnetic susceptibility and specific heat at zero temperature, linked to a unique electronic state absent in similar crystalline approximants.
Contribution
It provides the first evidence of quantum criticality in a quasicrystal, revealing a spatially confined critical electronic state distinct from crystalline phases.
Findings
Divergence of magnetic susceptibility as T approaches 0
Divergence of electronic specific heat coefficient at T=0
Quantum criticality is robust against hydrostatic pressure
Abstract
Quasicrystals are metallic alloys that possess long-range, aperiodic structures with diffraction symmetries forbidden to conventional crystals. Since the discovery of quasicrystals by Schechtman et al. at 1984 (ref. 1), there has been considerable progress in resolving their geometric structure. For example, it is well known that the golden ratio of mathematics and art occurs over and over again in their crystal structure. However, the characteristic properties of the electronic states - whether they are extended as in periodic crystals or localized as in amorphous materials - are still unresolved. Here we report the first observation of quantum (T = 0) critical phenomena of the Au-Al-Yb quasicrystal - the magnetic susceptibility and the electronic specific heat coefficient arising from strongly correlated 4f electrons of the Yb atoms diverge as T -> 0. Furthermore, we observe that this…
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