Elastic constants and ultrasound attenuation in the spin-liquid phase of Cs$_2$CuCl$_4$

ORAL

Abstract

The spin excitations in the spin-liquid phase of the anisotropic triangular lattice quantum antiferromagnet Cs$_2$CuCl$_4$ have been shown to propagate dominantly along the crystallographic $b$-axis. To test this dimensional reduction scenario, we have performed ultrasound experiments in the spin-liquid phase of Cs$_2$CuCl$_4$ probing the elastic constant $c_{22}$ and the sound attenuation along the $b$-axis as a function of an external magnetic field along the $a$-axis. We show that our data can be quantitatively explained within the framework of a nearest neighbor spin-$1/2$ Heisenberg chain, where fermions are introduced via the Jordan-Wigner transformation and the spin-phonon interaction arises from the usual exchange-striction mechanism.

*Financial support by the DFG via SFB/TRR49 is gratefully acknowledged.

Authors

  • Simon Streib

    • Institut f\"{u}r theoretische Physik, Universit\"{a}t Frankfurt, Germany
  • Peter Kopietz

    • Institut f\"{u}r theoretische Physik, Universit\"{a}t Frankfurt, Germany
  • Pham Thanh Cong

    • Physikalisches Institut, Universit\"{a}t Frankfurt, Germany
  • Bernd Wolf

    • Physikalisches Institut, Universit\"{a}t Frankfurt, Germany
  • Michael Lang

    • Physikalisches Institut, Universit\"{a}t Frankfurt, Germany
  • Natalija van Well

    • Physikalisches Institut, Universit\"{a}t Frankfurt, Germany
  • Franz Ritter

    • Physikalisches Institut, Universit\"{a}t Frankfurt, Germany
  • Wolf Assmus

    • Physikalisches Institut, Universit\"{a}t Frankfurt, Germany