Lee Martin, Moriya Paulo Hisao, Hastie Jennifer E
Opt Express. 2023 Nov 6;31(23):38786-38797. doi: 10.1364/OE.490046.
Vertical-external-cavity surface-emitting semiconductor lasers (VECSELs) are of increasing interest for applications requiring ultra-coherence and/or low noise at novel wavelengths; performance that is currently achieved via high-Q, air-spaced resonators to achieve long intra-cavity photon lifetimes (for the so-called class-A low noise regime), power scaling and high beam quality. Here, we report on the development of a compact, electronically tunable, monolithic-cavity, class-A VECSEL (monolithic VECSEL) for ultra-narrow free-running linewidths. A multi-quantum-well, resonant periodic gain structure with integrated distributed Bragg reflector (DBR) was optically-bonded to an air-gap-free laser resonator created inside a right-angle fused-silica prism to suppress the influence of environmental noise on the external laser oscillation, thus achieving high stability. Mode-hop-free wavelength tuning is performed via the stabilized temperature; or electronically, and with low latency, via a shear piezo-electric transducer mounted on the top of the prism. The free-running linewidth, estimated via the frequency power spectral density (PSD), is sub-kHz over ms timescales and <1.9 kHz for time sampling as long as 1s, demonstrating at least two orders-of-magnitude improvement in noise performance compared to previously reported single frequency VECSELs. The stable, total internal reflection resonator concept is akin to the prevalent monolithic non-planar ring oscillator (NPRO), however the monolithic VECSEL has several important advantages: tailored emission wavelength (via semiconductor bandgap engineering), no relaxation oscillations, no applied magnetic field, and low requirements on the pump beam quality. This approach is power-scalable in principle and could be applied to VECSELs at any of the wavelengths from the visible to the mid-infrared at which they are already available, to create a range of robust, ultra-coherent laser systems with reduced bulkiness and complexity. This is of particular interest for remote metrology and the translation of quantum technologies, such as optical clocks, from research laboratories into real world applications.
垂直外腔面发射半导体激光器(VECSEL)在需要新型波长下具有超高相干性和/或低噪声的应用中越来越受到关注;目前通过高Q值、空气间隔谐振器来实现长腔内光子寿命(用于所谓的A类低噪声模式)、功率缩放和高光束质量来达到这种性能。在此,我们报告了一种用于超窄自由运行线宽的紧凑型、电子可调谐、单片腔A类VECSEL(单片VECSEL)的开发情况。一种具有集成分布式布拉格反射器(DBR)的多量子阱、谐振周期增益结构被光学键合到一个在直角熔融石英棱镜内部创建的无气隙激光谐振器上,以抑制环境噪声对外部激光振荡的影响,从而实现高稳定性。无模式跳变的波长调谐可通过稳定温度来进行;或者通过安装在棱镜顶部的剪切压电换能器以电子方式且低延迟地进行。通过频率功率谱密度(PSD)估计的自由运行线宽在毫秒时间尺度上低于千赫兹,对于长达1秒的时间采样小于1.9千赫兹,与先前报道的单频VECSEL相比,噪声性能至少提高了两个数量级。稳定的全内反射谐振器概念类似于普遍使用的单片非平面环形振荡器(NPRO),然而单片VECSEL具有几个重要优点:可定制发射波长(通过半导体带隙工程)、无弛豫振荡、无需施加磁场以及对泵浦光束质量要求低。这种方法原则上可实现功率缩放,并且可应用于从可见光到中红外的任何现有波长的VECSEL,以创建一系列体积更小、复杂度更低的坚固、超相干激光系统。这对于远程计量以及将量子技术(如光钟)从研究实验室转化为实际应用尤为重要。