Yang Zehao, Li Jiahui, Liu Shaojie, Ren Zejun, Zhang Mingxuan, Geng Chunyan, Han Xiufeng, Wan Caihua, Wu Xiaojun
Hangzhou International Innovation Institute, Beihang University, Hangzhou, China.
School of Electronic and Information Engineering, Beihang University, Beijing, China.
Sci Technol Adv Mater. 2025 Mar 24;26(1):2478816. doi: 10.1080/14686996.2025.2478816. eCollection 2025.
Intense terahertz (THz) radiation in free space offers multifaceted capabilities for accelerating electron, understanding the mesoscale architecture in (bio)materials, elementary excitation and so on. Recently popularized spintronic THz emitters (STEs) with their versatility such as ultra-broadband, large-size and ease-for-integration have become one of the most promising alternative for the next generation of intense THz sources. Nevertheless, the typical W | Co Fe B | Pt necessitates an external-magnetic-field to saturate magnetization for stable operation, limiting its scalability for achieving higher THz field with uniform distribution over larger sample areas. Here we demonstrate the methodologies of enhancing the high-field THz radiation of external-magnetic-field-free IrMn | Co Fe B | W trilayer heterostructure via optimizing the substrate with superior thermal conductivity and integrating a one-dimensional photonic crystal (PC) structure to maximize the radiation efficiency. Under the excitation of a 1 kHz Ti: sapphire femtosecond laser amplifier with central wavelength of 800 nm, pulse duration of 35 fs, and maximum single pulse energy of 5.5 mJ, we successfully generate intense THz radiation with focal peak electric field up to 650 kV/cm with frequency range covering 0.1-5.5 THz from MgO-coated sample without external-magnetic-fields. These high-field STEs will also enable other applications such as ultra-broadband high-field THz spectroscopy and polarization-based large-size strong-field THz imaging.
自由空间中的强太赫兹(THz)辐射在加速电子、理解(生物)材料中的介观结构、基本激发等方面具有多方面的能力。最近,具有超宽带、大尺寸和易于集成等多功能性的自旋电子太赫兹发射器(STE)已成为下一代强太赫兹源最有前景的替代方案之一。然而,典型的W|CoFeB|Pt需要外部磁场来使磁化饱和以实现稳定运行,这限制了其在更大样品区域上实现具有均匀分布的更高太赫兹场的可扩展性。在此,我们展示了通过优化具有优异热导率的衬底并集成一维光子晶体(PC)结构以最大化辐射效率,来增强无外部磁场的IrMn|CoFeB|W三层异质结构的高场太赫兹辐射的方法。在中心波长为800nm、脉冲持续时间为35fs、最大单脉冲能量为5.5mJ的1kHz钛宝石飞秒激光放大器的激发下,我们成功地从无外部磁场的MgO涂层样品中产生了频率范围覆盖0.1 - 5.5THz、聚焦峰值电场高达650kV/cm的强太赫兹辐射。这些高场STE还将实现其他应用,如超宽带高场太赫兹光谱学和基于偏振的大尺寸强场太赫兹成像。