- By:
- Ennis, Matthew; Bag, Rabindranath; Cookmeyer, Tessa; Stone, Matthew B; Kolesnikov, Alexander I; Hong, Tao ; Balents, Leon; Haravifard, Sara
- Journal Name:
- Physical Review Letters
- Page Number:
- 256707
- Volume:
- 136
- Issue Number:
- 25
- Publication Date:
- August 21, 2026
- View DOI Listing:
- https://doi.org/10.1103/vhv1-pz6q
Abstract
TmZn2GaO5 is a newly synthesized triangular lattice magnet that exhibits a unique quantum phase characterized by strong Ising anisotropy, a pseudodoublet crystal electric field ground state, and a low-energy gapped excitation at the 𝐾 point. Unlike its well-known counterparts, TmMgGaO4 and YbMgGaO4, this material crystallizes in a distinct hexagonal structure, leading to a platform for investigating frustrated magnetism. Magnetic susceptibility, heat capacity, and inelastic neutron scattering measurements confirm the absence of long-range magnetic order down to 50 mK, placing TmZn2GaO5 in a distinct region of the transverse-field Ising model phase diagram. Theoretical calculations based on spin-wave theory and mean-field modeling reproduce key experimental observations, reinforcing the material’s placement in a quantum disordered or multipolar state near a quantum critical point that separates it from the low-energy phase of TmMgGaO4. These results highlight its potential for exploring quantum disordered states, anisotropic excitations, and exotic quantum phases in frustrated spin systems.