Quantum simulation of topologically protected states using directionally unbiased linear-optical multiports
arXiv:1708.00038 · doi:10.1103/PhysRevA.96.013858
Abstract
It is shown that quantum walks on one-dimensional arrays of special linear-optical units allow the simulation of discrete-time Hamiltonian systems with distinct topological phases. In particular, a slightly modified version of the Su-Schrieffer-Heeger (SSH) system can be simulated, which exhibits states of nonzero winding number and has topologically protected boundary states. In the large-system limit this approach uses quadratically fewer resources to carry out quantum simulations than previous linear-optical approaches and can be readily generalized to higher-dimensional systems. The basic optical units that implement this simulation consist of combinations of optical multiports that allow photons to reverse direction.
References in corpus (11)
- Topological characterization of periodically-driven quantum systems
- Exploring Topological Phases With Quantum Walks
- Discrete single-photon quantum walks with tunable decoherence
- Symmetries, Topological Phases and Bound States in the One-Dimensional Quantum Walk
- Topological orbital ladders
- Manipulating Topological Edge Spins in One-Dimensional Optical Lattice
- Edge-state enhanced transport in a 2-dimensional quantum walk
- Modifying quantum walks: A scattering theory approach
- Manipulating atoms in an optical lattice: Fractional fermion number and its optical quantum measurement
- Simulation and measurement of the fractional particle number in one-dimensional optical lattices
- Particle number fractionalization of a one-dimensional atomic Fermi gas with synthetic spin-orbit coupling