TOQUAM | Topological Quantum Gas Microsope

Summary
In this project I will study the properties of interacting topological insulators using ultracold atoms in optical lattices. To this aim, I will build the first bosonic quantum gas microscope that allows single site resolution in combination with excellent control of atomic interactions. This project will be able to detect and manipulate in-situ a wide number of topological Hamiltonians from the weakly to the strongly interacting regime. The first part of the project involves a construction stage. After characterization of the experimental setup, in a first series of experiments I will study the interacting 2D Su-Schrieffer-Heeger (SSH) model where higher-order symmetry-protected topological phases are expected. In this model, the control of interactions is crucial to observe interaction-induced topological phase transitions.
In a second series of experiments, I will implement a new technique based on Raman-induced tunneling in state dependent potentials to create artificial gauge fields. This scheme will provide full control of the hopping matrix elements and will avoid the typical heating associated to driven-many-body systems in cold atoms experiments. The spatial resolution provided by the quantum gas microscope, the acquired knowledge provided by the interacting SSH model and the implementation of this new driving-scheme will open the possibility to study and prepare adiabatically for the first time a strongly-correlated topological phase.
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More information & hyperlinks
Web resources: https://cordis.europa.eu/project/id/897142
Start date: 01-07-2020
End date: 30-06-2022
Total budget - Public funding: 162 806,40 Euro - 162 806,00 Euro
Cordis data

Original description

In this project I will study the properties of interacting topological insulators using ultracold atoms in optical lattices. To this aim, I will build the first bosonic quantum gas microscope that allows single site resolution in combination with excellent control of atomic interactions. This project will be able to detect and manipulate in-situ a wide number of topological Hamiltonians from the weakly to the strongly interacting regime. The first part of the project involves a construction stage. After characterization of the experimental setup, in a first series of experiments I will study the interacting 2D Su-Schrieffer-Heeger (SSH) model where higher-order symmetry-protected topological phases are expected. In this model, the control of interactions is crucial to observe interaction-induced topological phase transitions.
In a second series of experiments, I will implement a new technique based on Raman-induced tunneling in state dependent potentials to create artificial gauge fields. This scheme will provide full control of the hopping matrix elements and will avoid the typical heating associated to driven-many-body systems in cold atoms experiments. The spatial resolution provided by the quantum gas microscope, the acquired knowledge provided by the interacting SSH model and the implementation of this new driving-scheme will open the possibility to study and prepare adiabatically for the first time a strongly-correlated topological phase.

Status

TERMINATED

Call topic

MSCA-IF-2019

Update Date

28-04-2024
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Horizon 2020
H2020-EU.1. EXCELLENT SCIENCE
H2020-EU.1.3. EXCELLENT SCIENCE - Marie Skłodowska-Curie Actions (MSCA)
H2020-EU.1.3.2. Nurturing excellence by means of cross-border and cross-sector mobility
H2020-MSCA-IF-2019
MSCA-IF-2019