Ma Zhenzhe, Li Peiyan, Chen Sai, Wu Xiaojun
School of Electronic and Information Engineering, Beihang University, Beijing 100191, China.
Nanophotonics. 2022 Jan 31;11(9):1847-1862. doi: 10.1515/nanoph-2021-0714. eCollection 2022 Apr.
Extremely nonlinear terahertz (THz)-matter interactions and applications have positioned themselves as the next frontier in quantum information, nonlinear optics, and particle acceleration. However, the absence of free-space highly intense THz sources and the diffraction limit, which prevents THz waves from being concentrated to the nanoscale scale, are inhibiting the growth of extreme THz. To address this difficulty, suitably extremely concentrated THz sources are being produced, while (non-)resonant artificial metastructures are being widely used to enhance local fields, resulting in deep-subwavelength (</10) confinement of highly enhanced THz fields in micro-/nano-gaps. We discuss solid-state stable sources of intense THz radiation generated by femtosecond lasers in this Review, with a special emphasis on the lithium niobate-based tilted pulse front approach and the nonlinear THz metasurfaces allowed by it. Finally, we forecast the field's future directions in extreme THz research.
极端非线性太赫兹(THz)与物质的相互作用及应用已成为量子信息、非线性光学和粒子加速领域的下一个前沿阵地。然而,缺乏自由空间高强度太赫兹源以及衍射极限(这限制了太赫兹波被聚焦到纳米尺度)正阻碍着极端太赫兹技术的发展。为解决这一难题,人们正在制造适当的极端聚焦太赫兹源,同时(非)共振人工亚结构被广泛用于增强局部场,从而在微/纳米间隙中实现深度亚波长(<λ/10)的高度增强太赫兹场限制。在本综述中,我们讨论了飞秒激光产生的固态强太赫兹辐射稳定源,特别强调了基于铌酸锂的倾斜脉冲前沿方法及其所允许的非线性太赫兹超表面。最后,我们预测了极端太赫兹研究领域的未来发展方向。