论文标题

蓝光的蓝光生成型蓝光,并具有近乎免费的转换效率

Cavity-enhanced sum-frequency generation of blue light with near-unity conversion efficiency

论文作者

Kerdoncuff, Hugo, Christensen, Jesper B., Brasil, Túlio B., Novikov, Valeriy A., Polzik, Eugene S., Hald, Jan, Lassen, Mikael

论文摘要

我们报告了蓝色范围内双回共振高效的总和频率生成。该系统由一个10毫米长的定期螺旋式KTP晶体组成,放置在双谐弓形腔中,并由1064.5 nm处的纤维激光器和ti:sapphire激光器泵入849.2 nm。在TEM $ _ {00} $模式下,在472.4 nm处的375 MW的光功率在849.2 nm处生成250 MW,在1064.5 nm处的泵功率为250 mW,并以88 $ \%$匹配的双谐振环谐振器耦合。据我们所知,最高的最高总体达到的量子转换效率,使用连续波抽水,最高的光子模式的光子模式的95($ \ pm 3 $)的内部转换效率($ \ pm 3 $)$ \%$。由于在0.3 $ \%$和高非线性转换系数的水平上,高达0.045(0.015)w $^$^{ - 1} $,因此可能会导致非常高的转换效率。在一小时内执行的功率稳定性测量表明稳定性为0.8 $ \%$。生成的蓝光可以在472.4 nm的中心波长周围在5 nm内调节,受到非线性晶体的相匹配的限制。但是,可以通过适当选择非线性晶体和泵激光,以覆盖整个蓝色光谱(420 nm至510 nm)。我们的实验结果与泵场的空腔阻抗匹配和耗尽相匹配的分析和数值模拟非常吻合。

We report on double-resonant highly efficient sum-frequency generation in the blue range. The system consists of a 10-mm-long periodically poled KTP crystal placed in a double-resonant bow-tie cavity and pumped by a fiber laser at 1064.5 nm and a Ti:sapphire laser at 849.2 nm. An optical power of 375 mW at 472.4 nm in a TEM$_{00}$ mode was generated with pump powers of 250 mW at 849.2 nm and 200 mW at 1064.5 nm coupled into the double-resonant ring resonator with 88$\%$ mode-matching. The resulting internal conversion efficiency of 95($\pm 3$)$\%$ of the photons mode-matched to the cavity constitutes, to the best of our knowledge, the highest overall achieved quantum conversion efficiency using continuous-wave pumping. Very high conversion efficiency is rendered possible due to very low intracavity loss on the level of 0.3$\%$ and high nonlinear conversion coefficient up to 0.045(0.015) W$^{-1}$. Power stability measurements performed over one hour show a stability of 0.8$\%$. The generated blue light can be tuned within 5 nm around the center wavelength of 472.4 nm, limited by the phase-matching of our nonlinear crystal. This can however be expanded to cover the entire blue spectrum (420 nm to 510 nm) by proper choice of nonlinear crystals and pump lasers. Our experimental results agree very well with analytical and numerical simulations taking into account cavity impedance matching and depletion of the pump fields.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源