collaborators

7 papers

cond-mat.quant-gas2026

Realizing multi-orbital Emery models with ultracold atoms

Conall McCabe, Jamie Boyd, Kaizhao Wang +5

Strongly-correlated electrons in transition-metal oxides give rise to intriguing emergent phenomena, including high-temperature superconductivity in cuprates. While simplified one-…

cond-mat.quant-gas2025

Pseudogap in a Fermi-Hubbard quantum simulator

Lev Haldar Kendrick, Anant Kale, Youqi Gang +4

Understanding doped Mott insulators is a fundamental goal in condensed matter physics, with relevance to cuprate superconductors and other quantum materials. The doped Hubbard mode…

cond-mat.quant-gas2025

A neutral-atom Hubbard quantum simulator in the cryogenic regime

Muqing Xu, Lev Haldar Kendrick, Anant Kale +6

Ultracold fermionic atoms in optical lattices offer pristine realizations of Hubbard models, which are fundamental to modern condensed matter physics. Despite significant advanceme…

cond-mat.quant-gas2025

Optimized Gutzwiller Projected States for Doped Antiferromagnets in Fermi-Hubbard Simulators

Christian Reinmoser, Muqing Xu, Lev Haldar Kendrick +6

In quantum many-body physics, one aims to understand emergent phenomena and effects of strong interactions, ideally by developing a simple theoretical picture. Recently, progress i…

cond-mat.quant-gas2025

Ferrimagnetism of ultracold fermions in a multi-band Hubbard system

Martin Lebrat, Anant Kale, Lev Haldar Kendrick +6

Strongly correlated materials feature multiple electronic orbitals which are crucial to accurately understand their many-body properties, from cuprate materials to twisted bilayer…

cond-mat.quant-gas2025

Observation of Nagaoka Polarons in a Fermi-Hubbard Quantum Simulator

Martin Lebrat, Muqing Xu, Lev Haldar Kendrick +7

Quantum interference can deeply alter the nature of many-body phases of matter. In the paradigmatic case of the Hubbard model, Nagaoka famously proved that introducing a single iti…