ultracold atoms
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Author(s):  
Ting XIE ◽  
Andrea Orbán ◽  
Xiaodong Xing ◽  
Eliane Luc-Koenig ◽  
Romain Vexiau ◽  
...  

Abstract Ultracold temperatures in dilute quantum gases opened the way to an exquisite control of matter at the quantum level. Here we focus on the control of ultracold atomic collisions using a laser to engineer their interactions at large interatomic distances. We show that the entrance channel of two colliding ultracold atoms can be coupled to a repulsive collisional channel by the laser light so that the overall interaction between the two atoms becomes repulsive: this prevents them to come close together and to undergo inelastic processes, thus protecting the atomic gases from unwanted losses. We illustrate such an optical shielding mechanism with 39K and 133Cs atoms colliding at ultracold temperature (<1 microkelvin). The process is described in the framework of the dressed-state picture and we then solve the resulting stationary coupled Schrödinger equations. The role of spontaneous emission and photoinduced inelastic scattering is also investigated as possible limitations of the shielding efficiency. We predict an almost complete suppression of inelastic collisions over a broad range of Rabi frequencies and detunings from the 39K D2 line of the optical shielding laser, both within the [0, 200 MHz] interval. We found that the polarization of the shielding laser has a minor influence on this efficiency. This proposal could easily be formulated for other bialkali-metal pairs as their long-range interaction are all very similar to each other.


2021 ◽  
Vol 3 (4) ◽  
Author(s):  
T. Yamaguchi ◽  
D. Akamatsu ◽  
R. Kanamoto

2021 ◽  
Vol 104 (23) ◽  
Author(s):  
Itai Y. Efrat ◽  
Ulf Leonhardt

2021 ◽  
Vol 34 (10) ◽  
pp. 100401
Author(s):  
Amit Dutta ◽  
Krishnendu Sengupta

Abstract Comprehending out-of-equilibrium properties of quantum many-body systems is still an emergent area of recent research. The upsurge in this area is motivated by tremendous progress in experimental studies, the key platforms being ultracold atoms and trapped ion systems. There has been a significant contribution from India to this vibrant field. This special issue which includes both review articles and original research papers highlights some of these contributions.


Eos ◽  
2021 ◽  
Vol 102 ◽  
Author(s):  
Michel Van Camp ◽  
F. dos Santos ◽  
Michael Murb�ck ◽  
G�rard Petit ◽  
J�rgen M�ller

Applying new technology rooted in quantum mechanics and relativity to terrestrial and space geodesy will sharpen our understanding of how the planet responds to natural and human-induced changes.


2021 ◽  
Vol 11 (4) ◽  
Author(s):  
Paul Niklas Jepsen ◽  
Wen Wei Ho ◽  
Jesse Amato-Grill ◽  
Ivana Dimitrova ◽  
Eugene Demler ◽  
...  

Nature ◽  
2021 ◽  
Vol 600 (7889) ◽  
pp. 429-433
Author(s):  
Pascal Weckesser ◽  
Fabian Thielemann ◽  
Dariusz Wiater ◽  
Agata Wojciechowska ◽  
Leon Karpa ◽  
...  

Author(s):  
Marek Gluza ◽  
Per Moosavi ◽  
Spyros Sotiriadis

Abstract Tomonaga-Luttinger liquids (TLLs) can be used to effectively describe one-dimensional quantum many-body systems such as ultracold atoms, charges in nanowires, superconducting circuits, and gapless spin chains. Their properties are given by two parameters, the propagation velocity and the Luttinger parameter. Here we study inhomogeneous TLLs where these are promoted to functions of position and demonstrate that they profoundly affect the dynamics: In general, besides curving the light cone, we show that propagation is no longer ballistically localized to the light-cone trajectories, different from standard homogeneous TLLs. Specifically, if the Luttinger parameter depends on position, the dynamics features pronounced spreading into the light cone, which cannot be understood via a simple superposition of waves as in the Huygens-Fresnel principle. This is the case for ultracold atoms in a parabolic trap, which serves as our main motivation, and we discuss possible experimental observations in such systems.


2021 ◽  
Vol 104 (4) ◽  
Author(s):  
Axel U. J. Lode ◽  
Rui Lin ◽  
Miriam Büttner ◽  
Luca Papariello ◽  
Camille Lévêque ◽  
...  

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