驱动量子多体系统中的磁性相关的增强和信号变化
Frederik Görg1, Michael Messer1, Kilian Sandholzer1
1Institute for Quantum Electronics, ETH Zurich, 8093 Zurich, Switzerland.
Nature
|January 26, 2018
概括
费米子系统的周期性驱动可以控制磁性相关性,从而增强或逆转反铁磁性. 这种量子模拟展示了一个新的实验途径, 探索强烈相关的材料中的非传统配对.
科学领域:
- 凝聚物质物理学
- 量子模拟
- 多体物理学
背景情况:
- 周期性驱动提供了一种控制量子状态和进入静态系统之外的新阶段的途径.
- 了解由外界驱动引起的复杂多体动力学,如激光照射,至关重要但具有挑战性.
- 之前的研究集中在静态系统上,而驱动系统的理论分析现在正在进步.
研究的目的:
- 通过实验研究周期性驱动对费米子多体系统中的磁性相关性的影响.
- 探讨高频系统中有效的Floquet-Hamiltonian描述的有效性.
- 证明对抗铁磁和铁磁相关性的控制,并研究非传统配对的机制.
主要方法:
- 使用周期调节的六角格子进行实验量子模拟.
- 结果与同等静态格子的测量结果进行比较.
- 微观模型的应用以解释近共振驾驶下的相关性变化.
主要成果:
- 周期性驱动成功地减少,增强和逆转铁磁系中的反铁磁相关性,从而诱导铁磁相关性.
- 在高频模式中验证了重新规范化道能量的有效Floquet-Hamilton描述.
- 微观模型解释了通过独立控制粒子道和磁交换能量的相关操纵.
结论:
- 周期性驱动提供了一种强大的实验工具,用于连贯控制多体系统中的磁性.
- 相关性观察到的长寿命表明在强烈相关的系统中研究非传统配对的潜力.
- 这种方法为探索异常量子相提供了对静态方法的替代实验途径.
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