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高次谐波产生逼近强关联系统的量子临界点

High-Harmonic Generation Approaching the Quantum Critical Point of Strongly Correlated Systems.

作者信息

Shao Can, Lu Hantao, Zhang Xiao, Yu Chao, Tohyama Takami, Lu Ruifeng

机构信息

Institute of Ultrafast Optical Physics, Department of Applied Physics and MIIT Key Laboratory of Semiconductor Microstructure and Quantum Sensing, Nanjing University of Science and Technology, Nanjing 210094, China.

School of Physical Science and Technology and Key Laboratory for Magnetism and Magnetic Materials of the MoE, Lanzhou University, Lanzhou 730000, China.

出版信息

Phys Rev Lett. 2022 Jan 28;128(4):047401. doi: 10.1103/PhysRevLett.128.047401.

Abstract

By employing the exact diagonalization method, we investigate the high-harmonic generation (HHG) of the correlated systems under the strong laser irradiation. For the extended Hubbard model on a periodic chain, HHG close to the quantum critical point (QCP) is more significant compared to two neighboring gapped phases (i.e., charge-density-wave and spin-density wave states), especially in low frequencies. We confirm that the systems in the vicinity of the QCP are supersensitive to the external field and more optical-transition channels via excited states are responsible for HHG. This feature holds the potential of obtaining high-efficiency harmonics by making use of materials approaching QCP. Based on the two-dimensional Haldane model, we further propose that the even- or odd-order components of generated harmonics can be promisingly regarded as spectral signals to distinguish the topologically ordered phases from locally ordered ones. Our findings in this Letter pave the way to achieve ultrafast light source from HHG in strongly correlated materials and to study quantum phase transition by nonlinear optics in strong laser fields.

摘要

通过采用精确对角化方法,我们研究了强激光辐照下关联系统的高次谐波产生(HHG)。对于周期性链上的扩展哈伯德模型,与两个相邻的能隙相(即电荷密度波和自旋密度波态)相比,接近量子临界点(QCP)处的HHG更为显著,尤其是在低频情况下。我们证实,QCP附近的系统对外场超敏感,并且通过激发态的更多光学跃迁通道对HHG有贡献。这一特性使得利用接近QCP的材料获得高效谐波具有潜力。基于二维霍尔丹模型,我们进一步提出,所产生谐波的偶数或奇数阶分量有望作为光谱信号,用于区分拓扑有序相和局域有序相。我们在这封信中的发现为在强关联材料中通过HHG实现超快光源以及在强激光场中通过非线性光学研究量子相变铺平了道路。

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