论文标题

实现骨抗铁磁铁

Realization of a Bosonic Antiferromagnet

论文作者

Sun, Hui, Yang, Bing, Wang, Han-Yi, Zhou, Zhao-Yu, Su, Guo-Xian, Dai, Han-Ning, Yuan, Zhen-Sheng, Pan, Jian-Wei

论文摘要

量子抗铁磁铁对凝结物理学具有广泛的兴趣,因为它们为研究异国情调多体态(包括旋转液体和高温超导体)提供了平台。在这里,我们报告了具有超电玻色子的一维的海森伯格抗铁磁铁的创建。在两个组件的Bose-Hubbard系统中,我们切换了自旋交换相互作用的符号,并在扩展的70个位点链中实现了各向同性抗磁性Heisenberg模型。从低渗透性néel订购的状态开始,我们使用优化的绝热通道接近玻色子抗fiferromagnet。我们通过探测系统交错的磁化和自旋相关性的演变来证明抗铁磁性的建立。与冷凝物质系统相比,光学晶格中的超速气体可以通过显微镜进行设计和测量,从而为探索玻色磁磁力和自旋动态提供了显着的优势。

Quantum antiferromagnets are of broad interest in condensed matter physics as they provide a platform for studying exotic many-body states including spin liquids and high-temperature superconductors. Here, we report on the creation of a one-dimensional Heisenberg antiferromagnet with ultracold bosons. In a two-component Bose-Hubbard system, we switch the sign of the spin-exchange interaction and realize the isotropic antiferromagnetic Heisenberg model in an extended 70-site chain. Starting from a low-entropy Néel-ordered state, we use optimized adiabatic passage to approach the bosonic antiferromagnet. We demonstrate the establishment of antiferromagnetism by probing the evolution of the staggered magnetization and spin correlations of the system. Compared with condensed matter systems, ultracold gases in optical lattices can be microscopically engineered and measured, offering significant advantages for exploring bosonic magnetism and spin dynamics.

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