English

Quantum transport and localization in 1d and 2d tight-binding lattices

Quantum Physics 2022-04-15 v1 Mesoscale and Nanoscale Physics

Abstract

Particle transport and localization phenomena in condensed-matter systems can be modeled using a tight-binding lattice Hamiltonian. The ideal experimental emulation of such a model utilizes simultaneous, high-fidelity control and readout of each lattice site in a highly coherent quantum system. Here, we experimentally study quantum transport in one-dimensional and two-dimensional tight-binding lattices, emulated by a fully controllable 3×33 \times 3 array of superconducting qubits. We probe the propagation of entanglement throughout the lattice and extract the degree of localization in the Anderson and Wannier-Stark regimes in the presence of site-tunable disorder strengths and gradients. Our results are in quantitative agreement with numerical simulations and match theoretical predictions based on the tight-binding model. The demonstrated level of experimental control and accuracy in extracting the system observables of interest will enable the exploration of larger, interacting lattices where numerical simulations become intractable.

Keywords

Cite

@article{arxiv.2107.05035,
  title  = {Quantum transport and localization in 1d and 2d tight-binding lattices},
  author = {Amir H. Karamlou and Jochen Braumüller and Yariv Yanay and Agustin Di Paolo and Patrick Harrington and Bharath Kannan and David Kim and Morten Kjaergaard and Alexander Melville and Sarah Muschinske and Bethany Niedzielski and Antti Vepsäläinen and Roni Winik and Jonilyn L. Yoder and Mollie Schwartz and Charles Tahan and Terry P. Orlando and Simon Gustavsson and William D. Oliver},
  journal= {arXiv preprint arXiv:2107.05035},
  year   = {2022}
}