Qiu L-Y, Liang H-Y, Yang Y-B, Yang H-X, Tian T, Xu Y, Duan L-M
Center for Quantum Information, IIIS, Tsinghua University, Beijing 100084, P.R. China.
Sci Adv. 2020 May 22;6(21):eaba7292. doi: 10.1126/sciadv.aba7292. eCollection 2020 May.
The Kibble-Zurek mechanism provides a unified theory to describe the universal scaling laws in the dynamics when a system is driven through a second-order quantum phase transition. However, for first-order quantum phase transitions, the Kibble-Zurek mechanism is usually not applicable. Here, we experimentally demonstrate and theoretically analyze a power-law scaling in the dynamics of a spin-1 condensate across a first-order quantum phase transition when a system is slowly driven from a polar phase to an antiferromagnetic phase. We show that this power-law scaling can be described by a generalized Kibble-Zurek mechanism. Furthermore, by experimentally measuring the spin population, we show the power-law scaling of the temporal onset of spin excitations with respect to the quench rate, which agrees well with our numerical simulation results. Our results open the door for further exploring the generalized Kibble-Zurek mechanism to understand the dynamics across first-order quantum phase transitions.
基布尔-祖雷克机制提供了一种统一理论,用于描述当一个系统通过二阶量子相变被驱动时动力学中的通用标度律。然而,对于一阶量子相变,基布尔-祖雷克机制通常并不适用。在此,我们通过实验证明并从理论上分析了在一个自旋-1凝聚体从极性相缓慢驱动至反铁磁相的一阶量子相变过程中动力学的幂律标度。我们表明这种幂律标度可以由一个广义基布尔-祖雷克机制来描述。此外,通过实验测量自旋布居,我们展示了自旋激发的时间起始相对于猝灭速率的幂律标度,这与我们的数值模拟结果吻合得很好。我们的结果为进一步探索广义基布尔-祖雷克机制以理解一阶量子相变中的动力学打开了大门。