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Spinons and Damped Phonons in Spin-1/2 Quantum-Liquid Ba<sub>4</sub>Ir<sub>3</sub>O<sub>10</sub> Observed by Raman Scattering

ORAL

Abstract

In spin-1/2 Mott insulators, non-magnetic quantum spin liquid phases are often argued to arise when the system shows no magnetic ordering, but identifying positive signatures of these phases or related spinon quasiparticles can be elusive. Here we use Raman scattering to provide three signatures for spinons in a possible spin-orbit quantum liquid material Ba4Ir3O10: (1) A broad hump, which we show can arise from Luttinger Liquid spinons in Raman with parallel photon polarizations normal to 1D chains;  (2) Strong phonon damping from phonon-spin coupling via the spin-orbit interaction; and (3) the absence of (1) and (2) in the Neel ordered phase of the same compound where 2% of Ba is substituted by Sr. The phonon damping via itinerant spinons in this quantum-liquid insulator suggests a new mechanism for enhancing thermoelectricity in strongly correlated conductors, through a neutral quantum liquid that does not affect electronic transport. 

Presenters

  • Aaron Sokolik

    University of Colorado, Boulder

Authors

  • Aaron Sokolik

    University of Colorado, Boulder

  • Sami Hakani

    Georgia Institute of Technology

  • Nick Pellatz

    University of Colorado, Boulder

  • Susmita Roy

    Physics, University of Colorado, Boulder, University of Colorado, Boulder

  • Dmitry Reznik

    Physics, University of Colorado, Boulder, University of Colorado, Boulder

  • Gang Cao

    University of Colorado, Boulder

  • Itamar Kimchi

    Georgia Institute of Technology

  • Hengdi Zhao

    University of Colorado, Boulder