Real-space observation of emergent complexity of phase evolution in micrometer-sized IrTe crystals
arXiv:2110.05813 · doi:10.1103/PhysRevLett.127.145701
Abstract
We report complex behaviors in the phase evolution of transition-metal dichalcogenide IrTe thin flakes, captured with real-space observations using scanning Raman microscopy. The phase transition progresses via growth of a small number of domains, which is unlikely in statistical models that assume a macroscopic number of nucleation events. Consequently, the degree of phase evolution in the thin flakes is quite variable for the selected specimen and for a repeated measurement sequence, representing the emergence of complexity in the phase evolution. In the 20-m-volume specimen, the complex phase evolution results in the emergent coexistence of a superconducting phase that originally requires chemical doping to become thermodynamically stable. These findings indicate that the complexity involved in phase evolution considerably affects the physical properties of a small-sized specimen.
References in corpus (6)
- Superconductivity Induced by Bond Breaking in the Triangular Lattice of IrTe2
- Direct observation of nanoscale interface phase in the superconducting chalcogenide KFeSe with intrinsic phase separation
- Phase-change memory function of correlated electrons in organic conductors
- Dimerization-Induced Fermi-Surface Reconstruction in IrTe2
- Probing IrTe2 crystal symmetry by polarized Raman scattering
- Intermittent dynamics of antiferromagnetic phase in inhomogeneous iron-based chalcogenide superconductor