Li Rusong, Xu Yunfei, Zhang Shichen, Ma Yu, Liu Junhong, Zhou Binru, Wang Lijun, Zhuo Ning, Liu Junqi, Zhang Jinchuan, Zhai Shenqiang, Liu Shuman, Liu Fengqi, Lu Quanyong
Division of Quantum Materials and Devices, Beijing Academy of Quantum Information Sciences, Beijing, 100193, China.
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, China.
Light Sci Appl. 2024 Aug 16;13(1):193. doi: 10.1038/s41377-024-01567-2.
High-power terahertz (THz) quantum cascade laser, as an emerging THz solid-state radiation source, is attracting attention for numerous applications including medicine, sensing, and communication. However, due to the sub-wavelength confinement of the waveguide structure, direct beam brightness upscaling with device area remains elusive due to several mode competition and external optical lens is normally used to enhance the THz beam brightness. Here, we propose a metallic THz photonic crystal resonator with a phase-engineered design for single mode surface emission over a broad area. The quantum cascade surface-emitting laser is capable of delivering an output peak power over 185 mW with a narrow beam divergence of 4.4° × 4.4° at 3.88 THz. A high beam brightness of 1.6 × 10W srm with near-diffraction-limited M factors of 1.4 in both vertical and lateral directions is achieved from a large device area of 1.6 × 1.6 mm without using any optical lenses. The adjustable phase shift between the lattices enables a stable and high-intensity surface emission over a broad device area, which makes it an ideal light extractor for large-scale THz emitters. Our research paves the way to high brightness solid-state THz lasers and facilitates new applications in standoff THz imaging, detection, and diagnosis.
高功率太赫兹(THz)量子级联激光器作为一种新兴的太赫兹固态辐射源,因其在医学、传感和通信等众多应用中具有吸引力而备受关注。然而,由于波导结构的亚波长限制,由于多种模式竞争,直接通过增大器件面积来提高光束亮度仍然难以实现,通常需要使用外部光学透镜来增强太赫兹光束亮度。在此,我们提出了一种具有相位工程设计的金属太赫兹光子晶体谐振器,用于在大面积上实现单模表面发射。该量子级联表面发射激光器能够在3.88太赫兹频率下输出超过185毫瓦的峰值功率,窄光束发散角为4.4°×4.4°。在不使用任何光学透镜的情况下,从1.6×1.6毫米的大面积器件中实现了1.6×10瓦·秒/弧度的高光束亮度,在垂直和横向方向上的近衍射极限M因子均为1.4。晶格之间的可调相位偏移使得在大面积器件上能够实现稳定且高强度的表面发射,这使其成为大规模太赫兹发射器的理想光提取器。我们的研究为高亮度固态太赫兹激光器铺平了道路,并促进了在远距离太赫兹成像、检测和诊断等方面的新应用。