Topological pumping of a 1D dipolar gas into strongly correlated quantum many-body scar states
ORAL
Abstract
Long-lived excited states of interacting quantum systems that retain quantum correlations and evade thermalization are of great fundamental interest. We create nonthermal states in a bosonic one-dimensional (1D) quantum gas of dysprosium by stabilizing a super-Tonks-Girardeau gas against collapse and thermalization with repulsive long-range dipolar interactions. Stiffness and energy-perparticle measurements show that the system is dynamically stable regardless of contact interaction strength. This enables us to cycle contact interactions from weakly to strongly repulsive, then strongly attractive, and finally weakly attractive. We show that this cycle is an energy-space topological pump (caused by a quantum holonomy). Iterating this cycle offers an unexplored topological pumping method to create a hierarchy of increasingly excited quantum many-body scar states.
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Publication: DOI: 10.1126/science.abb4928
Presenters
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Kuan-Yu Lin
Stanford Univ
Authors
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Kuan-Yu Lin
Stanford Univ
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Wil Kao
Stanford University
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Kuan-Yu Li
Stanford Univ
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Sarang Gopalakrishnan
The Pennsylvania State University, Pennsylvania State University
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Benjamin L Lev
Stanford Univ