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Atomic and Laser Physics
Credit: Jack Hobhouse

Professor Andrew Daley

Professor of Quantum Physics

Research theme

  • Quantum information and computation
  • Quantum optics & ultra-cold matter

Sub department

  • Atomic and Laser Physics

Research groups

  • Theory of quantum systems
andrew.daley@physics.ox.ac.uk
Clarendon Laboratory, room 316.3
  • About
  • Publications

Density-Matrix Renormalization Group for Continuous Quantum Systems

(2021)

Authors:

Shovan Dutta, Anton Buyskikh, Andrew J Daley, Erich J Mueller
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Can multipartite entanglement be characterized by two-point connected correlation functions ?

(2021)

Authors:

Luca Lepori, Andrea Trombettoni, Domenico Giuliano, Johannes Kombe, Jorge Yago Malo, Andrew J Daley, Augusto Smerzi, Maria Luisa Chiofalo
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One-dimensional Kronig–Penney superlattices at the LaAlO3/SrTiO3 interface

Nature Physics Springer Nature 17:7 (2021) 782-787

Authors:

Megan Briggeman, Hyungwoo Lee, Jung-Woo Lee, Kitae Eom, François Damanet, Elliott Mansfield, Jianan Li, Mengchen Huang, Andrew J Daley, Chang-Beom Eom, Patrick Irvin, Jeremy Levy
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Deterministic Fast Scrambling with Neutral Atom Arrays

Physical Review Letters American Physical Society (APS) 126:20 (2021) 200603

Authors:

Tomohiro Hashizume, Gregory S Bentsen, Sebastian Weber, Andrew J Daley
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Hubbard models and state preparation in an optical Lieb lattice

New Journal of Physics IOP Publishing 23:8 (2021) 083014-083014

Authors:

S Flannigan, L Madail, RG Dias, AJ Daley

Abstract:

Inspired by the growing interest in probing many-body phases in novel two-dimensional lattice geometries we investigate the properties of cold atoms as they could be observed in an optical Lieb lattice. We begin by computing Wannier functions localised at individual sites for a realistic experimental setup, and determining coefficients for a Hubbard-like model. Based on this, we show how experiments could probe the robustness of edge states in a Lieb lattice with diagonal boundary conditions to the effects of interactions and realise strongly correlated many-body phases in this geometry. We then generalise this to interacting particles in a half-filled 1D Lieb ladder, where excitations are dominated by flat band states. We show that for strong attractive interactions, pair correlations are enhanced even when there is strong mixing with the Dirac cone. These findings in 1D raise interesting questions about the phases in the full 2D Lieb lattice which we show can be explored in current experiments
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