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Spectroscopic Demarcation of Emergent Photons and Spinons in a Dipolar-Octupolar Quantum Spin Liquid

Published 6 Jan 2026 in cond-mat.str-el | (2601.03202v1)

Abstract: The identification of fractionalized excitations in quantum spin liquids (QSLs) remains a central challenge in condensed matter physics. In dipolar-octupolar (DO) pyrochlores, such as Ce2Zr2O7\text{Ce}_2\text{Zr}_2\text{O}_7, the candidate ππ-flux quantum spin ice (QSI) state is predicted to host both gapless emergent photons and a continuum of spinons. However, resolving these modes at zero field is complicated by their spectral overlap and the presence of nonmagnetic scattering near zero energy. Here, we report neutron scattering experiments on Ce2Zr2O7\text{Ce}_2\text{Zr}_2\text{O}_7 under a magnetic field along the [1,1,1][1,1,1] direction. In contrast to previous unpolarized studies at zero-field that relied on high-temperature subtraction, we use a same-temperature high-field subtraction protocol to isolate the photon mode. Leveraging the selective coupling of the magnetic field to the dipolar degrees of freedom, we demonstrate the spectroscopic demarcation of these excitations. We observe that weak fields (0.15\approx 0.15 T) suppress the low-energy photon weight while leaving the high-energy spinon continuum robust, albeit hardened. Our results, supported by gauge mean-field theory and exact diagonalization calculations, provide strong evidence for the ππ-flux QSI state and introduce a powerful field-tuning protocol for investigating DO-QSLs.

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