English

Lattice effects in the quasi-two-dimensional valence-bond-solid Mott insulator EtMe$_3$P[Pd(dmit)$_2$]$_2$

Strongly Correlated Electrons 2014-01-14 v2 Superconductivity

Abstract

The organic charge-transfer salt EtMe3_3P[Pd(dmit)2_2]2_2 is a quasi-two-dimensional Mott insulator with localized spins SS = 1/2 residing on a distorted triangular lattice. Here we report measurements of the uniaxial thermal expansion coefficients αi\alpha_i along the in-plane ii = aa- and cc-axis as well as along the out-of-plane bb-axis for temperatures 1.4\,K \leq T \leq 200\,K. Particular attention is paid to the lattice effects around the phase transition at TVBST_{VBS} = 25\,K into a low-temperature valence-bond-solid phase and the paramagnetic regime above where effects of short-range antiferromagnetic correlations can be expected. The salient results of our study include (i) the observation of strongly anisotropic lattice distortions accompanying the formation of the valence-bond-solid, and (ii) a distinct maximum in the thermal expansion coefficients in the paramagnetic regime around 40\,K. Our results demonstrate that upon cooling through TVBST_{VBS} the in-plane cc-axis, along which the valence bonds form, contracts while the second in-plane aa-axis elongates by the same relative amount. Surprisingly, the dominant effect is observed for the out-of-plane bb-axis which shrinks significantly upon cooling through TVBST_{VBS}. The pronounced anomaly in αi\alpha_i around 40\,K is attributed to short-range magnetic correlations. It is argued that the position of this maximum, relative to that in the magnetic susceptibility around 70\,K, speaks in favor of a more anisotropic triangular-lattice scenario for this compound than previously thought.

Keywords

Cite

@article{arxiv.1309.1100,
  title  = {Lattice effects in the quasi-two-dimensional valence-bond-solid Mott insulator EtMe$_3$P[Pd(dmit)$_2$]$_2$},
  author = {Rudra Sekhar Manna and Mariano de Souza and Reizo Kato and Michael Lang},
  journal= {arXiv preprint arXiv:1309.1100},
  year   = {2014}
}

Comments

6 pages, 4 figures, submitted to Phys. Rev. B