Joint Quantum Institute, National Institute of Standards and Technology (NIST), and University of Maryland, Gaithersburg, MD 20899, USA.
Science. 2015 May 1;348(6234):540-4. doi: 10.1126/science.aaa1385. Epub 2015 Apr 30.
The interplay of magnetic exchange interactions and tunneling underlies many complex quantum phenomena observed in real materials. We study nonequilibrium magnetization dynamics in an extended two-dimensional (2D) system by loading effective spin-1/2 bosons into a spin-dependent optical lattice and use the lattice to separately control the resonance conditions for tunneling and superexchange. After preparing a nonequilibrium antiferromagnetically ordered state, we observe relaxation dynamics governed by two well-separated rates, which scale with the parameters associated with superexchange and tunneling. With tunneling off-resonantly suppressed, we observe superexchange-dominated dynamics over two orders of magnitude in magnetic coupling strength. Our experiment will serve as a benchmark for future theoretical work as the detailed dynamics of this 2D, strongly correlated, and far-from-equilibrium quantum system remain out of reach of current computational techniques.
磁交换相互作用和隧穿的相互作用是在实际材料中观察到的许多复杂量子现象的基础。我们通过将有效自旋-1/2 玻色子加载到自旋相关的光晶格中来研究扩展二维(2D)系统中的非平衡磁化动力学,并使用晶格分别控制隧穿和超交换的共振条件。在制备出非平衡反铁磁有序状态后,我们观察到由两个很好分离的速率控制的弛豫动力学,这两个速率与超交换和隧穿相关的参数成比例。当隧穿非共振抑制时,我们观察到在两个数量级的磁耦合强度上超交换主导的动力学。我们的实验将成为未来理论工作的基准,因为这个 2D、强关联且远离平衡的量子系统的详细动力学仍然超出当前计算技术的范围。