English

Novel Pauli-paramagnetic quantum phase in a Mott insulator

Strongly Correlated Electrons 2012-10-02 v1 Superconductivity

Abstract

In Mott insulators, the strong electron-electron Coulomb repulsion prevents metallicity and charge excitations are gapped. In dimensions greater than one, their spins are usually ordered antiferromagnetically at low temperatures. Geometrical frustrations can destroy this long-range order, leading to exotic quantum spin liquid (QSL) states. However, their magnetic ground states have been a long-standing mystery. Here we show that a QSL state in the organic Mott insulator EtMe3_3Sb[Pd(dmit)2_2]2_2 with two-dimensional triangular lattice has Pauli-paramagnetic-like low-energy excitations, which are a hallmark of itinerant fermions. Our torque magnetometry down to low temperatures (30 mK) up to high fields (32 T) reveal distinct residual paramagnetic susceptibility comparable to that in a half-filled two-dimensional metal. This demonstrates that the system is in a magnetically gapless ground state, a critical state with infinite magnetic correlation length. Moreover, our results are robust against deuteration, pointing toward the emergence of an extended `quantum critical phase', in which low-energy spin excitations behave as in paramagnetic metals with Fermi surface, despite the frozen charge degree of freedom.

Keywords

Cite

@article{arxiv.1210.0407,
  title  = {Novel Pauli-paramagnetic quantum phase in a Mott insulator},
  author = {D. Watanabe and M. Yamashita and S. Tonegawa and Y. Oshima and H. M. Yamamoto and R. Kato and I. Sheikin and K. Behnia and T. Terashima and S. Uji and T. Shibauchi and Y. Matsuda},
  journal= {arXiv preprint arXiv:1210.0407},
  year   = {2012}
}

Comments

7 pages, 3 figures. Published in Nature communication

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