TY - JOUR KW - Quantum Gases (cond-mat.quant-gas) KW - Atomic Physics (physics.atom-ph) KW - Fluid Dynamics (physics.flu-dyn) KW - FOS: Physical sciences KW - FOS: Physical sciences AU - Reuben Wang AU - John Bohn AB -
We analytically derive the transport tensor of thermal conductivity in an ultracold, but not yet quantum degenerate, gas of Bosonic lanthanide atoms using the Chapman-Enskog procedure. The tensor coefficients inherit an anisotropy from the anisotropic collision cross section for these dipolar species, manifest in their dependence on the dipole moment, dipole orientation, and s-wave scattering length. These functional dependences open up a pathway for control of macroscopic gas phenomena via tuning of the microscopic atomic interactions. As an illustrative example, we analyze the time evolution of a temperature hot spot which shows preferential heat diffusion orthogonal to the dipole orientation, a direct consequence of anisotropic thermal conduction.
BT - Physical Review A DA - 2022-08 DO - 10.1103/PhysRevA.106.023319 N2 -We analytically derive the transport tensor of thermal conductivity in an ultracold, but not yet quantum degenerate, gas of Bosonic lanthanide atoms using the Chapman-Enskog procedure. The tensor coefficients inherit an anisotropy from the anisotropic collision cross section for these dipolar species, manifest in their dependence on the dipole moment, dipole orientation, and s-wave scattering length. These functional dependences open up a pathway for control of macroscopic gas phenomena via tuning of the microscopic atomic interactions. As an illustrative example, we analyze the time evolution of a temperature hot spot which shows preferential heat diffusion orthogonal to the dipole orientation, a direct consequence of anisotropic thermal conduction.
PB - arXiv PY - 2022 EP - 023319 T2 - Physical Review A TI - Thermal Conductivity of an Ultracold Paramagnetic Bose Gas UR - https://journals.aps.org/pra/abstract/10.1103/PhysRevA.106.023319 VL - 106 ER -