Properties of a static dipolar impurity in a 2D dipolar BEC
Neelam Shukla, Jeremy R Armstrong

TL;DR
This paper investigates the properties of a dipolar impurity in a 2D dipolar Bose-Einstein condensate using numerical simulations, providing insights relevant for experimental studies of dipolar quantum gases.
Contribution
It introduces a numerical study of dipolar impurities in 2D Bose gases, exploring density profiles, self-energies, and dynamics with parameters aligned to current experimental systems.
Findings
Self-energy increases with atom number
Trap anisotropy reduces impurity self-energy
Density evolution shows impurity integration over time
Abstract
We study a system of ultra cold dipolar Bose gas atoms confined in a two-dimensional (2D) harmonic trap with a dipolar impurity implanted at the center of the trap. Due to recent experimental progress in dipolar condensates, we focused on calculating properties of dipolar impurity systems that might guide experimentalists if they choose to study impurities in dipolar gases. We used the Gross-Pitaevskii formalism solved numerically via the split-step Crank-Nicolson method. We chose parameters of the background gas to be consistent with dysprosium (Dy), one of the strongest magnetic dipoles and of current experimental interest, and used chromium (Cr), erbium (Er), terbium (Tb), and Dy for the impurity. The dipole moments were aligned by an external field along what was chosen to be the z-axis, and studied 2D confinements that were perpendicular or parallel to the external field. We show…
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Taxonomy
TopicsQuantum and electron transport phenomena · Advancements in Semiconductor Devices and Circuit Design · Silicon Carbide Semiconductor Technologies
