NEST, Scuola Normale Superiore and Istituto di Nanoscienze-CNR, I-56126 Pisa, Italy.
Phys Rev Lett. 2012 Jun 15;108(24):245302. doi: 10.1103/PhysRevLett.108.245302.
The nonequilibrium spin dynamics of a one-dimensional system of repulsively interacting fermions is studied by means of density-matrix renormalization group simulations. We focus on the short-time decay of the oscillation amplitudes of the centers of mass of spin-up and spin-down fermions. Because of many body effects, the decay is found to evolve from quadratic to linear in time, and eventually back to quadratic as the strength of the interaction increases. The characteristic rate of the decay increases linearly with the strength of repulsion in the weak-coupling regime, while it is inversely proportional to it in the strong-coupling regime. Our predictions can be tested in experiments on tunable ultracold few-fermion systems in one-dimensional traps.
通过密度矩阵重整化群模拟研究了排斥相互作用的一维费米子系统的非平衡自旋动力学。我们关注自旋向上和自旋向下费米子的质心的振荡幅度的短时间衰减。由于多体效应,衰减被发现从二次时间演化到线性时间,并且随着相互作用强度的增加最终回到二次时间。衰减的特征速率在弱耦合区域中与排斥强度呈线性增加,而在强耦合区域中与排斥强度呈反比。我们的预测可以在一维陷阱中可调谐的超冷少费米子系统的实验中进行测试。