论文标题
连续对称的自发断裂,可扩展的旋转挤压
Scalable spin squeezing from spontaneous breaking of a continuous symmetry
论文作者
论文摘要
自发对称性破坏(SSB)是哈密顿均衡状态的特性,在热力学限制下,即使在磁场耦合到它之后,也可以保留有限的平均值的订单参数的有限平均值。在具有连续对称性的量子自旋模型的情况下,我们表明这种绝热过程还伴随着对对称发生器的波动的抑制,即沿着对称轴的集体自旋组件。在$ s = 1/2 $旋转的系统中,沿一个方向抑制波动的组合和横向磁化的持久性会导致旋转挤压 - 量子状态的备受追捧的特性,都是为目的,目的是纠缠的目的以及用于计量学的目的。着眼于XXZ模型的情况,自发打破了U(1)(或SU(2))对称性的对称性,我们表明,绝热制备的状态几乎具有最小的旋转不确定性。通过这些状态尺度可以实现的最小阶段不确定性为$ n^{ - 3/4} $,并带有旋转$ n $的数量;并且在绝热准备时间与$ n $线性缩放之后,可以实现这种缩放。我们的发现为在包括例如光学晶格时钟。
Spontaneous symmetry breaking (SSB) is a property of Hamiltonian equilibrium states which, in the thermodynamic limit, retain a finite average value of an order parameter even after a field coupled to it is adiabatically turned off. In the case of quantum spin models with continuous symmetry, we show that this adiabatic process is also accompanied by the suppression of the fluctuations of the symmetry generator -- namely, the collective spin component along an axis of symmetry. In systems of $S=1/2$ spins or qubits, the combination of the suppression of fluctuations along one direction and of the persistence of transverse magnetization leads to spin squeezing -- a much sought-after property of quantum states, both for the purpose of entanglement detection as well as for metrological uses. Focusing on the case of XXZ models spontaneously breaking a U(1) (or even SU(2)) symmetry, we show that the adiabatically prepared states have nearly minimal spin uncertainty; that the minimum phase uncertainty that one can achieve with these states scales as $N^{-3/4}$ with the number of spins $N$; and that this scaling is attained after an adiabatic preparation time scaling linearly with $N$. Our findings open the door to the adiabatic preparation of strongly spin-squeezed states in a large variety of quantum many-body devices including e.g. optical lattice clocks.