论文标题
从内部旋转弱绑定的氦二聚体
Swirling the weakly bound helium dimer from inside
论文作者
论文摘要
控制原子与外部田间之间的相互作用为物理学开辟了新的分支,从密切相关的原子系统到理想的玻色和费米气体以及Efimov物理学。这样的控制通常会准备静止或绝热的样品。另一方面,在分子物理学中,外部超短激光场被用来创建各向异性电位,以在自由空间中启动超快旋转波包和对齐分子。在这里,我们结合了这两个超快时间和低能量的体制。我们将短激光脉冲应用于氦二聚体,这是一个弱结合且高度离域的单结合态量子系统。激光场局部调节两个氦原子之间的相互作用,从而赋予$ 2 \ hbar $的角动量,并唤起最初受到限制的分离波数据包。我们录制了一部从内而外演变的波数据包的密度和阶段的电影。在较大的间距离距离上,两个氦原子之间的相互作用可以忽略不计,波数据包基本上是免费的。这项工作为波数据包动力学的未来断层扫描铺平了道路,并为研究异国情调且几乎无法访问的量子系统(例如Halo和Efimov State)提供了一种技术。
Controlling the interactions between atoms with external fields opened up new branches in physics ranging from strongly correlated atomic systems to ideal Bose and Fermi gases and Efimov physics. Such control usually prepares samples that are stationary or evolve adiabatically in time. On the other hand, in molecular physics external ultrashort laser fields are employed to create anisotropic potentials that launch ultrafast rotational wave packets and align molecules in free space. Here we combine these two regimes of ultrafast times and low energies. We apply a short laser pulse to the helium dimer, a weakly bound and highly delocalized single bound state quantum system. The laser field locally tunes the interaction between two helium atoms, imparting an angular momentum of $2\hbar$ and evoking an initially confined dissociative wave packet. We record a movie of the density and phase of this wave packet as it evolves from the inside out. At large internuclear distances, where the interaction between the two helium atoms is negligible, the wave packet is essentially free. This work paves the way for future tomography of wave packet dynamics and provides the technique for studying exotic and otherwise hardly accessible quantum systems such as halo and Efimov states.