CREOL, The College of Optics and Photonics, University of Central Florida, Orlando, FL 32816-2700, USA.
Science. 2014 Nov 21;346(6212):975-8. doi: 10.1126/science.1258480. Epub 2014 Oct 30.
The ability to control the modes oscillating within a laser resonator is of fundamental importance. In general, the presence of competing modes can be detrimental to beam quality and spectral purity, thus leading to spatial as well as temporal fluctuations in the emitted radiation. We show that by harnessing notions from parity-time (PT) symmetry, stable single-longitudinal mode operation can be readily achieved in a system of coupled microring lasers. The selective breaking of PT symmetry can be used to systematically enhance the maximum attainable output power in the desired mode. This versatile concept is inherently self-adapting and facilitates mode selectivity over a broad bandwidth without the need for other additional intricate components. Our experimental findings provide the possibility to develop synthetic optical devices and structures with enhanced functionality.
控制激光谐振腔内振荡模式的能力具有重要的意义。一般来说,竞争模式的存在可能会对光束质量和光谱纯度造成不利影响,从而导致发射辐射的空间和时间波动。我们表明,通过利用奇偶时间(PT)对称的概念,可以在耦合微环激光器系统中轻松实现稳定的单纵模操作。选择性地打破 PT 对称可以系统地增强所需模式下的最大可达到输出功率。这个多功能的概念具有内在的自适应性,并在无需其他复杂额外组件的情况下,在较宽的带宽内实现模式选择性。我们的实验结果为开发具有增强功能的合成光器件和结构提供了可能性。