论文标题
使用介电纳米膜在真空紫外线区域中可调的第三次谐波生成
Tunable third harmonic generation in the vacuum ultraviolet region using dielectric nanomembranes
论文作者
论文摘要
在100-200-nm(6-12 eV)波长范围内在真空紫外线(VUV)区域中运行的可调相干光源在许多研究领域都具有重要的光谱应用,包括时间分辨角度分辨光光镜光谱光谱光谱(ARPES)。激光技术的最新进展使可见的飞秒激光器可以向上转向真空和极端紫外线。但是,他们的实验设置的复杂性以及用于VUV生成的散装非线性晶体的稀缺性阻碍了其广泛使用。在这里,我们建议使用独立的介电纳米膜作为一种简单且实用的VUV生成方法。我们证明,第三个谐波vuv光是从可见的,可见的飞秒激光脉冲的兴奋中产生的,可用于光谱式的光谱固定厚度的Sio2纳米乳液的光谱应用。纳米膜的亚微米厚度是最大程度地提高VUV发电效率并防止基本束的自相度调制和光谱扩大的最佳选择。观察到的VUV光子在157 nm处的每个脉冲最多可达10^7光子,1-kHz重复速率,对应于10^-6的转化效率。此外,可以通过更改基本波长来在146-190 nm波长范围内调节中央VUV波长。我们还通过实验和计算探索材料和厚度依赖性。提出的结果表明,介电纳米膜可以用作VUV光谱应用的实用非线性培养基。
Tunable coherent light sources operating in the vacuum ultraviolet (VUV) region in 100-200-nm (6-12 eV) wavelength range have important spectroscopic applications in many research fields, including time-resolved angle-resolved photoemission spectroscopy (ARPES). Recent advances in laser technology have enabled the upconversion of visible femtosecond lasers to the vacuum and extreme ultraviolet regions. However, the complexity of their experimental setups and the scarcity of bulk nonlinear crystals for VUV generation have hampered its widespread use. Here, we propose the use of a free-standing dielectric nanomembranes as a simple and practical method for tunable VUV generation. We demonstrate that third harmonic VUV light is generated with sufficient intensity for spectroscopic applications from commercially available SiO2 nanomemebranes of submicron thicknesses under excitation with visible femtosecond laser pulses. The submicron thickness of the nanomembranes is optimal for maximize the VUV generation efficiency and prevents self-phase modulation and spectral broadening of the fundamental beam. The observed VUV photons are up to 10^7 photons per pulse at 157 nm with 1-kHz repetition rate, corresponding to a conversion efficiency of 10^-6. Moreover, the central VUV wavelength can be tuned in 146-190-nm wavelength range by changing the fundamental wavelength. We also explore material and thickness dependence with experiments and calculations. The presented results suggest that dielectric nanomembranes can be used as a practical nonlinear media for VUV spectroscopic applications.