论文标题
通过完整的1D到3D跨界探测连贯性的程度
Probing the Degree of Coherence through the Full 1D to 3D crossover
论文作者
论文摘要
我们在整个整个维度跨界中,从实验中研究量子退化$^{87} $ rb原子的气体,从表现出与一维理论一致的一维(1D)系统,到一个三维(3D)相位相关的系统,从而在这些独特的插入这些独特的插入之间,从而在这些独特的插入中,从而在这些独特的插入式系统之间进行实验。我们使用将原子芯片与印刷电路板结合的混合动力捕获结构,我们不断地在宽范围内调整系统的尺寸,同时通过飞行时间扩展,通过密度涟漪的功率频谱测量相位波动。我们的测量结果证实,化学势$μ$控制了系统从3D的偏离,并且波动取决于$μ$和温度$ t $。通过一项严格的研究,我们定量观察到跨界车内的依赖性如何随着系统变为3D而逐渐消失。在整个交叉中,波动被证明取决于一维轴向集体激发的相对占用。
We experimentally study a gas of quantum degenerate $^{87}$Rb atoms throughout the full dimensional crossover, from a one-dimensional (1D) system exhibiting phase fluctuations consistent with 1D theory to a three-dimensional (3D) phase-coherent system, thereby smoothly interpolating between these distinct, well-understood regimes. Using a hybrid trapping architecture combining an atom chip with a printed circuit board, we continuously adjust the system's dimensionality over a wide range while measuring the phase fluctuations through the power spectrum of density ripples in time-of-flight expansion. Our measurements confirm that the chemical potential $μ$ controls the departure of the system from 3D and that the fluctuations are dependent on both $μ$ and the temperature $T$. Through a rigorous study we quantitatively observe how inside the crossover the dependence on $T$ gradually disappears as the system becomes 3D. Throughout the entire crossover the fluctuations are shown to be determined by the relative occupation of 1D axial collective excitations.