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arxiv: 1506.01444 · v1 · pith:ZQ3JDXTDnew · submitted 2015-06-04 · 🪐 quant-ph · cond-mat.quant-gas· math-ph· math.MP· nlin.PS· physics.flu-dyn

Quantum spirals

classification 🪐 quant-ph cond-mat.quant-gasmath-phmath.MPnlin.PSphysics.flu-dyn
keywords quantumvorticityfluideffectfieldnonlinearamountanother
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Quantum systems often exhibit fundamental incapability to entertain vortex. The Meissner effect, a complete expulsion of the magnetic field (the electromagnetic vorticity), for instance, is taken to be the defining attribute of the superconducting state. Superfluidity is another, close-parallel example; fluid vorticity can reside only on topological defects with a limited (quantized) amount. Recent developments in the Bose-Einstein condensates produced by particle traps further emphasize this characteristic. We show that the challenge of imparting vorticity to a quantum fluid can be met through a nonlinear mechanism operating in a hot fluid corresponding to a thermally modified Pauli-Schroedinger spinor field. In a simple field-free model, we show that the thermal effect, represented by a nonlinear, non-Hermitian Hamiltonian, in conjunction with spin vorticity, leads to new interesting quantum states; a spiral solution is explicitly worked out.

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