Reddy Dileep V, Raymer Michael G
Opt Express. 2017 May 29;25(11):12952-12966. doi: 10.1364/OE.25.012952.
Quantum frequency conversion (FC) in nonlinear optical media is a powerful tool for temporal-mode selective manipulation of light. Recent attempts at achieving high mode selectivities and/or fidelities have had to resort to multi-dimensional optimization schemes to determine the system's natural Schmidt modes. Certain combinations of relative-group velocities between the relevant frequency bands, medium length, and temporal pulse widths have been known to achieve good selectivities (exceeding 80%) for temporal modes that are nearly identical to pump pulse shapes, even for high conversion efficiencies. Working in this parameter regime using an off-the-shelf, second-harmonic generation, MgO:PPLN waveguide, and with pulses on the order of 500 fs at wavelengths around 800 nm, we verify experimentally that model-predicted Schmidt modes provide the high temporal-mode selectivity expected. The good agreement between experiment and theory paves the way to the implementation of a proposed two-stage FC scheme that is predicted by the present theory to reach near-perfect (100%) selectivity.
非线性光学介质中的量子频率转换(FC)是一种用于对光进行时间模式选择性操控的强大工具。近期,为实现高模式选择性和/或保真度,人们不得不采用多维优化方案来确定系统的自然施密特模式。已知相关频带之间的相对群速度、介质长度和时间脉冲宽度的某些组合,对于与泵浦脉冲形状几乎相同的时间模式,即使在高转换效率下,也能实现良好的选择性(超过80%)。我们使用现成的二次谐波产生MgO:PPLN波导,在该参数范围内工作,对于波长约800 nm、脉宽约500 fs的脉冲,通过实验验证了模型预测的施密特模式具有预期的高时间模式选择性。实验与理论之间的良好一致性为实施一种由当前理论预测可实现近乎完美(100%)选择性的两级FC方案铺平了道路。