English

Fractional matter coupled to the emergent gauge field in a quantum spin ice

Strongly Correlated Electrons 2025-01-27 v4

Abstract

Electronic spins can form long-range entangled phases of condensed matter named quantum spin liquids. Their existence is conceptualized in models of two- or three-dimensional frustrated magnets that evade symmetry-breaking order down to zero temperature. Quantum spin ice (QSI) is a theoretically well-established example described by an emergent quantum electrodynamics, with excitations behaving like photon and matter quasiparticles. The latter are fractionally charged and equivalent to the `spinons' emerging from coherent phases of singlets in one dimension, where clear experimental proofs of fractionalization exist. However, in frustrated magnets it remains difficult to establish consensual evidence for quantum spin liquid ground states and their fractional excitations. Here, we use backscattering neutron spectroscopy to achieve extremely high resolution of the time-dependent magnetic response of the candidate QSI material Ce2_2Sn2_2O7_7. We find a gapped spectrum featuring a threshold and peaks that match theories for pair production and propagation of fractional matter excitations (spinons) strongly coupled to a background gauge field. The multiple peaks are a specific signature of the π\pi-flux phase of QSI, providing spectroscopic evidence for fractionalization in a three-dimensional quantum spin liquid.

Keywords

Cite

@article{arxiv.2304.05452,
  title  = {Fractional matter coupled to the emergent gauge field in a quantum spin ice},
  author = {Victor Porée and Han Yan and Félix Desrochers and Sylvain Petit and Elsa Lhotel and Markus Appel and Jacques Ollivier and Yong Baek Kim and Andriy H. Nevidomskyy and Romain Sibille},
  journal= {arXiv preprint arXiv:2304.05452},
  year   = {2025}
}

Comments

19 pages, 6 figures, fixes in references