Gao Zhigang, Cui Lugui, Chu Yushi, Niu Luyue, Wang Lehan, Zhao Rui, Yang Yulong, Liu Xiaofeng, Ren Jing, Dong Guoping
College of Physics and Electronic Engineering, Taishan University, 271021, Taian, China.
Key Laboratory of In-fiber Integrated Optics of Ministry of Education, College of Physics and Optoelectronic Engineering, Harbin Engineering University, 150001, Harbin, China.
Light Sci Appl. 2025 Jan 2;14(1):14. doi: 10.1038/s41377-024-01671-3.
Visible light microlasers are essential building blocks for integrated photonics. However, achieving low-threshold (μW), continuous-wave (CW) visible light lasing at room temperature (RT) has been a challenge because of the formidable requirement of population inversion at short wavelengths. Rare-earth (RE)-activated microcavities, featuring high-quality factor (Q) and small mode volume of whispering gallery modes, offer a great opportunity for achieving infrared-to-visible upconversion (UC) lasing. Here, we report that batch-produced nano-glass composite (GC) microspheres incorporating RE-doped fluoride nanocrystals show efficient UC emissions. These multi-phase composite microspheres exhibit a high Q value (≥10), comparable to that of conventional multi-component glass microspheres. The UC lasing with pure red, green, and blue (RGB) emissions are demonstrated based on a highly efficient tapered fiber-microsphere system. More importantly, the GC microspheres manifest reduced (by 45%) lasing threshold and enhanced (more than four times) slope efficiency. These characteristics, together with excellent long-term stability, suggest a promising solution to achieving highly robust, stand-alone, low-threshold, and versatile UC microlasers.
可见光微激光器是集成光子学的基本构建模块。然而,由于在短波长下实现粒子数反转的要求很高,在室温(RT)下实现低阈值(μW)、连续波(CW)可见光激光发射一直是一项挑战。具有高品质因数(Q)和回音壁模式小模式体积的稀土(RE)激活微腔,为实现红外到可见光的上转换(UC)激光发射提供了绝佳机会。在此,我们报道了包含RE掺杂氟化物纳米晶体的批量生产的纳米玻璃复合材料(GC)微球表现出高效的UC发射。这些多相复合微球表现出与传统多组分玻璃微球相当的高Q值(≥10)。基于高效的锥形光纤-微球系统展示了具有纯红、绿和蓝(RGB)发射的UC激光发射。更重要的是,GC微球的激光发射阈值降低了45%,斜率效率提高了四倍多。这些特性,再加上出色的长期稳定性,为实现高度稳健、独立、低阈值和多功能的UC微激光器提供了一个有前景的解决方案。