Anyon-Impurity Bound States in Quantum-Engineered Fractional Chern Insulators
Botao Wang, Amit Vashisht, Felix A. Palm, Fabian Grusdt, Laurens Vanderstraeten, Nathan Goldman
Abstract
Mobile impurities provide a powerful means of probing correlated and topological quantum matter, through their dressing by the surrounding medium and the practical probes granting access to the resulting composite object. Motivated by the recent observation of anyon-impurity composites in the solid state, as well as recent realizations of Laughlin-type states in engineered lattice systems, we investigate the formation of a bound state between a mobile impurity and a single pinned quasihole in the interacting Harper-Hofstadter model deep in the fractional Chern insulator regime. Combining analytical arguments with large-scale numerical simulations, we characterize the structure, energetics, and stability of hybrid anyon-impurity bound states, and show that their binding energy provides direct access to the fractional charge of the quasihole under conditions that we identify. We further demonstrate that the composite object can be coherently transported by externally steering the quasihole pinning potential. Our results establish a realistic pathway for controlled anyon-impurity manipulation in quantum-engineered platforms, enabling experimentally feasible protocols for braiding.
Create a lesson
Related papers
Layer-Dependent Vibrational and Optical Properties of Mo0.58W0.42Se2 Alloy
Szymon Socha, Tomasz Wozniak, Elena Blundo et al.
Chiral classical and quantum acoustics with hole-spin qubits
Zhanning Wang, Yongtao Li, Nelson E. Rivas et al.
Fröhlich Bipolarons in Two-Dimensional Materials
A. Kudlis, V. Shahnazaryan, I. Iorsh et al.
Altermagnetic Magnons in Dipolar Nanomagnet Arrays
Rhea Hoyer, Ephraim Spindler, Lukas Körber et al.
Tuneable terahertz transitions in zigzag graphene nanoribbons
R. R. Hartmann, M. E. Portnoi
Landscape geometry of Majorana zero modes in inhomogeneous superconductors
Guo-Jian Qiao, Zhi-Lei Zhang, Kang Xu et al.