Dipartimento di Fisica del Politecnico, Corso Duca degli Abruzzi 24, I-10129, Torino, Italy; Max Planck Institut fur Quantenoptik, Hans-Kopferman-Str. 1, D-85748, Garching, Germany.
Sci Rep. 2011;1:43. doi: 10.1038/srep00043. Epub 2011 Jul 22.
Considerable efforts are currently devoted to the preparation of ultracold neutral atoms in the strongly correlated quantum Hall regime. However, the necessary angular momentum is very large and in experiments with rotating traps this means spinning frequencies extremely near to the deconfinement limit; consequently, the required control on parameters turns out to be too stringent. Here we propose instead to follow a dynamic path starting from the gas initially confined in a rotating ring. The large moment of inertia of the ring-shaped fluid facilitates the access to large angular momenta, corresponding to giant vortex states. The trapping potential is then adiabatically transformed into a harmonic confinement, which brings the interacting atomic gas in the desired quantum-Hall regime. We provide numerical evidence that for a broad range of initial angular frequencies, the giant-vortex state is adiabatically connected to the bosonic ν = 1/2 Laughlin state.
目前,人们正在投入大量精力来制备强关联量子霍尔态中的超冷中性原子。然而,所需的角动量非常大,在旋转陷阱实验中,这意味着旋转频率非常接近退禁闭极限;因此,对参数的控制要求变得过于严格。在这里,我们提出了一种替代方案,即从最初限制在旋转环中的气体开始,沿着动态路径前进。环形流体的大转动惯量有利于获得大的角动量,对应于巨型涡旋态。然后,将囚禁势绝热变换为谐波约束,将相互作用的原子气体带入所需的量子霍尔态。我们提供了数值证据,表明在初始角频率的广泛范围内,巨型涡旋态与玻色子ν=1/2 Laughlin 态是绝热连接的。