Generation of chiral spin state by quantum simulation
arXiv:1604.03630 · doi:10.1103/PhysRevB.93.235137
Abstract
Chirality of materials in nature appears when there are asymmetries in their lattice structures or interactions in a certain environment. Recent development of quantum simulation technology has enabled the manipulation of qubits. Accordingly, chirality can be realized intentionally rather than passively observed. Here we theoretically provide simple methods to create a chiral spin state in a spin-1/2 qubit system on a square lattice. First, we show that switching ON/OFF the Heisenberg and interactions produces the chiral interaction directly in the effective Hamiltonian without controlling local fields. Moreover, when initial states of spin-qubits are appropriately prepared, we prove that the chirality with desirable phase is dynamically obtained. Finally, even for the case where switching ON/OFF the interactions is infeasible and the interactions are always-on, we show that, by preparing an asymmetric initial qubit state, the chirality whose phase is is dynamically generated.
7 pages, 4 figures, 1 table
References in corpus (7)
- A Two Qubit Logic Gate in Silicon
- Quantum spin-liquid emerging in two-dimensional correlated Dirac fermions
- A new class of chiral materials hosting magnetic skyrmions beyond room temperature
- An exact chiral spin liquid with non-Abelian anyons
- Spin-echo of a single electron spin in a quantum dot
- Spin Hamiltonian for which the Chiral Spin Liquid is the Exact Ground State
- Dynamical topological quantum computation using spin pulse control in the Heisenberg model