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      Torque equilibrium spin wave theory study of anisotropy and Dzyaloshinskii-Moriya interaction effects on the indirect K\(-\) edge RIXS spectra of a triangular lattice antiferromagnet

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          Abstract

          We apply the recently formulated torque equilibrium spin wave theory (TESWT) to compute the \(1/S\)-order interacting \(K\) -edge bimagnon resonant inelastic x-ray scattering (RIXS) spectra of an anisotropic triangular lattice antiferromagnet with Dzyaloshinskii-Moriya (DM) interaction. We extend the interacting torque equilibrium formalism, incorporating the effects of DM interaction, to appropriately account for the zero-point quantum fluctuation that manifests as the emergence of spin Casimir effect in a noncollinear spin spiral state. Using inelastic neutron scattering data from Cs\(_2\)CuCl\(_4\) we fit the 1/S corrected TESWT dispersion to extract exchange and DM interaction parameters. We use these new fit coefficients alongside other relevant model parameters to investigate, compare, and contrast the effects of spatial anisotropy and DM interaction on the RIXS spectra at various points across the magnetic Brillouin zone. We highlight the key features of the RIXS spectrum at the two inequivalent rotonlike points, \(M(0,2 \pi/\sqrt{3})\) and \(M^{'}(\pi,\pi/\sqrt{3})\), a behavior which is quite different from an isotropic triangular lattice system. While the roton RIXS spectra at the \(M\) point undergoes a spectral downshift with increasing anisotropy, the peak at the \(M^\prime\) location loses its spectral strength without any shift. With the inclusion of DM interaction the spiral phase is more stable and the peak at both \(M\) and \(M^\prime\) point exhibits a spectral upshift. Our calculation offers a practical example of how to calculate interacting RIXS spectra in a non-collinear quantum magnet using TESWT. Our findings provide an opportunity to experimentally test the predictions of interacting TESWT formalism using RIXS, a spectroscopic method currently in vogue.

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          Exact spectra, spin susceptibilities, and order parameter of the quantum Heisenberg antiferromagnet on the triangular lattice

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            Experimental realization of a 2D fractional quantum spin liquid.

            The ground-state ordering and dynamics of the two-dimensional S = 1/2 frustrated Heisenberg antiferromagnet Cs(2)CuCl(4) are explored using neutron scattering in high magnetic fields. We find that the dynamic correlations show a highly dispersive continuum of excited states, characteristic of the resonating valence bond state, arising from pairs of S = 1/2 spinons. Quantum renormalization factors for the excitation energies (1.65) and incommensuration (0.56) are large.
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              Theory of Raman scattering in layered cuprate materials

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                Author and article information

                Journal
                04 June 2019
                Article
                1906.01619
                7efb2c13-8299-4d45-88ba-4e453683aa05

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                15 pages, 11 figures
                cond-mat.mtrl-sci cond-mat.str-el

                Condensed matter
                Condensed matter

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