单频571nm VECSEL用于镁的光电离

SPIE LASE Pub Date : 2016-06-03 DOI:10.1117/12.2213398
S. Burd, T. Leinonen, J. Penttinen, D. Allcock, D. Slichter, R. Srinivas, A. C. Wilson, M. Guina, D. Leibfried, D. Wineland
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引用次数: 2

摘要

我们报道了一个腔内频率加倍垂直外腔表面发射激光器(VECSEL)的发展,发射波长为571 nm,用于镁的光离。该激光器采用v型腔几何结构,在一个腔臂的末端有增益芯片和用于二次谐波产生的三硼酸锂(LBO)晶体。该增益芯片采用底发射设计,具有10个厚度为7 nm的GaInAs量子阱,由GaAsP进行应变补偿。该系统能够在可见光中产生高达2.4±0.1 W(两个独立输出光束的总功率)。在1hz至1mhz的所有频率范围内,自由运行的相对强度噪声均低于- 55 dBc/Hz。通过激光面包板的隔音和温度调节,无模跳的工作时间通常在5小时以上。为了提高长期的频率稳定性,激光可以锁定到分子碘的无多普勒跃迁。为了估计短期线宽,将激光调谐到参考腔的共振。通过对谐振Hänsch-Couillaud误差信号的分析,我们推断出线宽为50±10 kHz。285nm的光由含有β-硼酸钡(BBO)晶体的外部构建腔产生。紫外光用于在表面电极射频保罗阱中加载25Mg+离子。这些结果证明了具有腔内谐波产生的高功率单频VECSELs在原子和分子物理应用中的适用性和通用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Single-frequency 571nm VECSEL for photo-ionization of magnesium
We report the development of an intracavity-frequency-doubled vertical external-cavity surface-emitting laser (VECSEL) emitting at 571 nm for photoionization of magnesium. The laser employs a V-cavity geometry with a gain chip at the end of one cavity arm and a lithium triborate (LBO) crystal for second harmonic generation. The gain chip has a bottom-emitting design with ten GaInAs quantum wells of 7 nm thickness, which are strain compensated by GaAsP. The system is capable of producing up to 2.4 ± 0.1 W (total power in two separate output beams) in the visible. The free-running relative intensity noise was measured to be below −55 dBc/Hz over all frequencies from 1 Hz to 1 MHz. With acoustic isolation and temperature regulation of the laser breadboard, the mode-hop free operation time is typically over 5 hrs. To improve the long-term frequency stability, the laser can be locked to a Doppler-free transition of molecular iodine. To estimate the short-term linewidth, the laser was tuned to the resonance of a reference cavity. From analysis of the on-resonance Hänsch-Couillaud error signal we infer a linewidth of 50 ± 10 kHz. Light at 285 nm is generated with an external build-up cavity containing a β-barium borate (BBO) crystal. The UV light is used for loading 25Mg+ ions in a surface-electrode RF Paul trap. These results demonstrate the applicability and versatility of high-power, single-frequency VECSELs with intracavity harmonic generation for applications in atomic and molecular physics.
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