Realizing a lattice spin model with polar molecules
Bo Yan, Steven A. Moses, Bryce Gadway, Jacob P. Covey, Kaden R. A., Hazzard, Ana Maria Rey, Deborah S. Jin, Jun Ye

TL;DR
This paper demonstrates the realization of a lattice spin model using polar molecules in a 3D optical lattice, showcasing long-range dipolar interactions and their effects on spin coherence and dynamics, paving the way for studying quantum magnetism.
Contribution
The study provides the first experimental observation of dipolar interactions in polar molecules within a lattice, enabling direct long-range spin interactions and exploring many-body quantum phenomena.
Findings
Observation of spin-exchange oscillations due to dipolar interactions
Dependence of spin coherence time on lattice filling
Suppression of loss via quantum Zeno effect
Abstract
With the recent production of polar molecules in the quantum regime, long-range dipolar interactions are expected to facilitate the understanding of strongly interacting many-body quantum systems and to realize lattice spin models for exploring quantum magnetism. In atomic systems, where interactions require wave function overlap, effective spin interactions on a lattice can be realized via superexchange; however, the coupling is weak and limited to nearest-neighbor interactions. In contrast, dipolar interactions exist in the absence of tunneling and extend beyond nearest neighbors. This allows coherent spin dynamics to persist even at high entropy and low lattice filling. Effects of dipolar interactions in ultracold molecular gases have so far been limited to the modification of chemical reactions. We now report the observation of dipolar interactions of polar molecules pinned in a 3D…
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