Atikian Haig A, Sinclair Neil, Latawiec Pawel, Xiong Xiao, Meesala Srujan, Gauthier Scarlett, Wintz Daniel, Randi Joseph, Bernot David, DeFrances Sage, Thomas Jeffrey, Roman Michael, Durrant Sean, Capasso Federico, Lončar Marko
John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, 01238, USA.
Division of Physics, Mathematics and Astronomy, and Alliance for Quantum Technologies (AQT), California Institute of Technology, Pasadena, CA, 91125, USA.
Nat Commun. 2022 May 11;13(1):2610. doi: 10.1038/s41467-022-30335-2.
High-power continuous-wave (CW) lasers are used in a variety of areas including industry, medicine, communications, and defense. Yet, conventional optics, which are based on multi-layer coatings, are damaged when illuminated by high-power CW laser light, primarily due to thermal loading. This hampers the effectiveness, restricts the scope and utility, and raises the cost and complexity of high-power CW laser applications. Here we demonstrate monolithic and highly reflective mirrors that operate under high-power CW laser irradiation without damage. In contrast to conventional mirrors, ours are realized by etching nanostructures into the surface of single-crystal diamond, a material with exceptional optical and thermal properties. We measure reflectivities of greater than 98% and demonstrate damage-free operation using 10 kW of CW laser light at 1070 nm, focused to a spot of 750 μm diameter. In contrast, we observe damage to a conventional dielectric mirror when illuminated by the same beam. Our results initiate a new category of optics that operate under extreme conditions, which has potential to improve or create new applications of high-power lasers.
高功率连续波(CW)激光器被应用于包括工业、医学、通信和国防在内的各种领域。然而,基于多层涂层的传统光学器件在高功率连续波激光照射下会受到损坏,主要原因是热负载。这阻碍了其有效性,限制了其范围和用途,并增加了高功率连续波激光应用的成本和复杂性。在此,我们展示了在高功率连续波激光照射下仍能无损运行的单片式高反射镜。与传统镜子不同,我们的镜子是通过在具有卓越光学和热性能的单晶金刚石表面蚀刻纳米结构来实现的。我们测得反射率大于98%,并使用波长为1070nm、功率为10kW的连续波激光聚焦到直径为750μm的光斑上,演示了其无损运行。相比之下,当用同一光束照射时,我们观察到传统介质镜受到了损坏。我们的研究结果开创了一类能在极端条件下运行的新型光学器件,这有可能改进或创造高功率激光器的新应用。