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具有极性分子的可调巡游自旋动力学

Tunable itinerant spin dynamics with polar molecules.

作者信息

Li Jun-Ru, Matsuda Kyle, Miller Calder, Carroll Annette N, Tobias William G, Higgins Jacob S, Ye Jun

机构信息

JILA, National Institute of Standards and Technology and Department of Physics, University of Colorado, Boulder, CO, USA.

出版信息

Nature. 2023 Feb;614(7946):70-74. doi: 10.1038/s41586-022-05479-2. Epub 2023 Feb 1.

Abstract

Strongly interacting spins underlie many intriguing phenomena and applications ranging from magnetism to quantum information processing. Interacting spins combined with motion show exotic spin transport phenomena, such as superfluidity arising from pairing of spins induced by spin attraction. To understand these complex phenomena, an interacting spin system with high controllability is desired. Quantum spin dynamics have been studied on different platforms with varying capabilities. Here we demonstrate tunable itinerant spin dynamics enabled by dipolar interactions using a gas of potassium-rubidium molecules confined to two-dimensional planes, where a spin-1/2 system is encoded into the molecular rotational levels. The dipolar interaction gives rise to a shift of the rotational transition frequency and a collision-limited Ramsey contrast decay that emerges from the coupled spin and motion. Both the Ising and spin-exchange interactions are precisely tuned by varying the strength and orientation of an electric field, as well as the internal molecular state. This full tunability enables both static and dynamical control of the spin Hamiltonian, allowing reversal of the coherent spin dynamics. Our work establishes an interacting spin platform that allows for exploration of many-body spin dynamics and spin-motion physics using the strong, tunable dipolar interaction.

摘要

强相互作用的自旋是许多有趣现象和应用的基础,范围从磁学到量子信息处理。相互作用的自旋与运动相结合会展现出奇异的自旋输运现象,比如由自旋吸引诱导的自旋配对所产生的超流性。为了理解这些复杂现象,需要一个具有高度可控性的相互作用自旋系统。人们已经在具有不同能力的不同平台上研究了量子自旋动力学。在此,我们展示了利用限制在二维平面内的钾铷分子气体,通过偶极相互作用实现的可调巡游自旋动力学,其中一个自旋1/2系统被编码到分子转动能级中。偶极相互作用导致转动跃迁频率的移动以及由耦合的自旋和运动产生的碰撞限制的拉姆齐对比度衰减。通过改变电场的强度和方向以及分子内部状态,可以精确调节伊辛相互作用和自旋交换相互作用。这种完全可调性实现了对自旋哈密顿量的静态和动态控制,使得相干自旋动力学能够反转。我们的工作建立了一个相互作用自旋平台,该平台允许利用强的、可调的偶极相互作用来探索多体自旋动力学和自旋 - 运动物理。

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