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在半整体式腔中通过相位补偿晶体实现高效倍频。

Efficient frequency doubling by a phase-compensated crystal in a semimonolithic cavity.

作者信息

Juwiler Irit, Arie Ady

机构信息

Department of Electrical Engineering-Physical Electronics, Tel Aviv University, Tel Aviv 69978, Israel.

出版信息

Appl Opt. 2003 Dec 20;42(36):7163-9. doi: 10.1364/ao.42.007163.

Abstract

In multiple-pass nonlinear frequency conversion devices, interacting waves may accumulate different phases, owing to dispersive elements in the system. Phase compensation is therefore necessary for efficient frequency conversion. We experimentally demonstrate phase compensation in a compact semimonolithic frequency-doubling cavity by using a periodically poled KTP crystal. The conversion efficiency of the crystal was found to decrease at high pump powers, owing to power-dependent thermal lensing. This experimental observation was supported by a theoretical calculation of the conversion efficiency in a cavity, considering the mismatch between the mode's thermally loaded and unloaded cavities. A design procedure was also presented to compensate for the thermal lensing effect. The highest conversion efficiency of 56.5%, corresponding to a second-harmonic power of 117.5 mW at 532 nm, was achieved with a cw Nd:YAG pump power of 208 mW.

摘要

在多程非线性频率转换装置中,由于系统中的色散元件,相互作用的波可能会积累不同的相位。因此,为了实现高效的频率转换,相位补偿是必要的。我们通过使用周期性极化的磷酸钛氧钾(KTP)晶体,在一个紧凑的半整体式倍频腔中进行了相位补偿的实验演示。由于功率依赖的热透镜效应,发现晶体的转换效率在高泵浦功率下会降低。考虑到模式的热加载腔和未加载腔之间的失配,通过对腔内转换效率的理论计算支持了这一实验观察结果。还提出了一种设计程序来补偿热透镜效应。在208 mW的连续波Nd:YAG泵浦功率下,实现了56.5%的最高转换效率,对应于532 nm处117.5 mW的二次谐波功率。

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