Discontinuous Phase Transition in a Strongly Correlated Driven Lattice
POSTER
Abstract
Discontinuous (first-order) phase transitions and the associated metastability play fundamental roles in nature, from ferromagnetism in solids to the false-vacuum decay in the early Universe. However, their underlying mechanism is poorly understood, particularly in many-body systems.
Here, we realise a discontinuous quantum phase transition in an optical lattice with ultracold atoms. By shaking the optical lattice, we hybridise the lowest two bands, leading to a transition from a Mott insulator to a superfluid with staggered phase order, which is called a π-superfluid.
Crucially, the transition from the original Mott insulator in the lowest band to the resulting superfluid in the excited band can be first order, because the non-staggered order in the Mott insulator is incompatible with the staggered order of this superfluid – so the system has to choose one. We directly observed the metastability and hysteresis associated with this first-order transition by monitoring how fast one phase sweeps into another, or not.
Our results agree well with numerical simulations, and open a new avenue towards simulating false-vacuum decay as well as exploring the role of quantum fluctuations in strongly correlated systems.
Here, we realise a discontinuous quantum phase transition in an optical lattice with ultracold atoms. By shaking the optical lattice, we hybridise the lowest two bands, leading to a transition from a Mott insulator to a superfluid with staggered phase order, which is called a π-superfluid.
Crucially, the transition from the original Mott insulator in the lowest band to the resulting superfluid in the excited band can be first order, because the non-staggered order in the Mott insulator is incompatible with the staggered order of this superfluid – so the system has to choose one. We directly observed the metastability and hysteresis associated with this first-order transition by monitoring how fast one phase sweeps into another, or not.
Our results agree well with numerical simulations, and open a new avenue towards simulating false-vacuum decay as well as exploring the role of quantum fluctuations in strongly correlated systems.
Publication: B. Song et al. Realizing discontinuous quantum phase transitions in a strongly correlated driven optical lattice. Nature Physics (2022). DOI: 10.1038/s41567-021-01476-w.
Presenters
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Lee C Reeve
Univ of Cambridge
Authors
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Lee C Reeve
Univ of Cambridge
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Shaurya A Bhave
Univ of Cambridge
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Jr-Chiun Yu
Univ of Cambridge
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Emmanuel Gottlob
Univ of Cambridge
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Georgia Nixon
Univ of Cambridge, University of Cambridge
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Bo Song
Univ of Cambridge
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Ulrich Schneider
Univ of Cambridge, University of Cambridge