dipolar gases
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2021 ◽  
Vol 103 (6) ◽  
Author(s):  
Reuben R. W. Wang ◽  
John L. Bohn
Keyword(s):  

2020 ◽  
Vol 5 (2) ◽  
pp. 31
Author(s):  
Cosetta Baroni ◽  
Giacomo Gori ◽  
Maria Luisa Chiofalo ◽  
Andrea Trombettoni

We study the non-linear beam splitter in matter-wave interferometers using ultracold quantum gases in a double-well configuration in presence of non-local interactions inducing inter-well density-density coupling, as they can be realized, e.g., with dipolar gases. We explore this effect after considering different input states, in the form of either coherent, or Twin-Fock, or NOON states. We first review the non-interacting limit and the case in which only the local interaction is present, including the study of sensitivity near the self-trapping threshold. Then, we consider the two-mode model in the presence of inter-well interactions and consider the scaling of the sensitivity as a function of the non-local coupling strength. Our analysis clearly shows that non-local interactions can compensate the degradation of the sensitivity induced by local interactions, so that they may be used to restore optimal sensitivity.


Mathematics ◽  
2020 ◽  
Vol 8 (4) ◽  
pp. 484
Author(s):  
Jeremy R. Armstrong ◽  
Aksel S. Jensen ◽  
Artem G. Volosniev ◽  
Nikolaj T. Zinner

A few-body cluster is a building block of a many-body system in a gas phase provided the temperature at most is of the order of the binding energy of this cluster. Here we illustrate this statement by considering a system of tubes filled with dipolar distinguishable particles. We calculate the partition function, which determines the probability to find a few-body cluster at a given temperature. The input for our calculations—the energies of few-body clusters—is estimated using the harmonic approximation. We first describe and demonstrate the validity of our numerical procedure. Then we discuss the results featuring melting of the zero-temperature many-body state into a gas of free particles and few-body clusters. For temperature higher than its binding energy threshold, the dimers overwhelmingly dominate the ensemble, where the remaining probability is in free particles. At very high temperatures free (harmonic oscillator trap-bound) particle dominance is eventually reached. This structure evolution appears both for one and two particles in each layer providing crucial information about the behavior of ultracold dipolar gases. The investigation addresses the transition region between few- and many-body physics as a function of temperature using a system of ten dipoles in five tubes.


2020 ◽  
Vol 1540 ◽  
pp. 012002
Author(s):  
G A Domínguez-Castro ◽  
R Paredes
Keyword(s):  

2017 ◽  
Vol 95 (6) ◽  
Author(s):  
Florian Cartarius ◽  
Anna Minguzzi ◽  
Giovanna Morigi

2017 ◽  
Vol 482 ◽  
pp. 303-310 ◽  
Author(s):  
Lushuai Cao ◽  
Simeon I. Mistakidis ◽  
Xing Deng ◽  
Peter Schmelcher

Author(s):  
Lev Pitaevskii ◽  
Sandro Stringari
Keyword(s):  

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