Spin-lattice Coupling in U(1) Quantum Spin Liquids
arXiv:1802.05280 · doi:10.1103/PhysRevB.99.014412
Abstract
Quantum spin liquids (QSLs) are exotic phases with intrinsic massive entanglements. Instead of microscopic spins, fractionalized particles and gauge fluctuations are emergent, revealing QSLs' exotic natures. Quantum spins with strong spin-orbit coupling on a pyrchlore lattice, for example Pr2Zr2O7, are suggested to host a U(1) QSL with emergent photons, gapless excitations without breaking any symmetries, as well as emergent monopoles. One of the key issues in QSLs is an interplay between emergent degrees of freedom of QSLs and conventional degrees of freedom, and we investigate the interplay by constructing a general theory of spin-lattice coupling in U(1) QSLs. We find that the coupling induces characteristic interplay between phonons and photons. For example, photons become qualitatively more stable than phonons at low temperature. We also propose mechanisms to detect emergent photons in experiments such as sound attenuation and thermal transport relying on spin-lattice coupling in U(1) QSLs.
13 pages
References in corpus (8)
- Pyrochlore Photons: The U(1) Spin Liquid in a S=1/2 Three-Dimensional Frustrated Magnet
- Topological order, emergent gauge fields, and Fermi surface reconstruction
- Rods of Neutron Scattering Intensity in Yb2Ti2O7: Compelling Evidence for Significant Anisotropic Exchange in a Magnetic Pyrochlore Oxide
- Physical properties of a candidate quantum spin-ice system Pr2Hf2O7
- Spinon Phonon Interaction and Ultrasonic Attenuation in Quantum Spin Liquids
- Elastic constants and ultrasonic attenuation in the cone state of the frustrated antiferromagnet Cs_2CuCl_4
- Ultrasonic investigations of spin-ices DyTiO and HoTiO in and out of equilibrium
- Discovery of Emergent Photon and Monopoles in a Quantum Spin Liquid