Tan Yangzhi, Huang Yitong, Wu Dan, Wang Yunjun, Sun Xiao Wei, Choi Hoi Wai, Wang Kai
State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Institute of Nanoscience and Applications, Department of Electrical and Electronic Engineering, Southern University of Science and Technology, Shenzhen, China.
Department of Electrical and Electronic Engineering, The University of Hong Kong, Hong Kong, China.
Light Sci Appl. 2025 Jan 7;14(1):36. doi: 10.1038/s41377-024-01714-9.
Colloidal quantum dots (CQDs) are attractive gain media due to their wavelength-tunability and low optical gain threshold. Consequently, CQD lasers, especially the surface-emitting ones, are promising candidates for display, sensing and communication. However, it remains challenging to achieve a low-threshold surface-emitting CQD laser array with high stability and integration density. For this purpose, it is necessary to combine the improvement of CQD material and laser cavity. Here, we have developed high-quality CQD material with core/interlayer/graded shell structure to achieve a low gain threshold and high stability. Subsequently, surface-emitting lasers based on CQD-integrated circular Bragg resonator (CBR) have been achieved, wherein the near-unity mode confinement factor (Γ of 89%) and high Purcell factor of 22.7 attributed to the strong field confinement of CBR enable a low lasing threshold of 17 μJ cm, which is 70% lower than that (56 μJ cm) of CQD vertical-cavity surface-emitting laser. Benefiting from the high quality of CQD material and laser cavity, the CQD CBR laser is capable of continuous stable operation for 1000 hours (corresponding to 3.63 × 10 pulses) at room temperature. This performance is the best among solution-processed lasers composed of nanocrystals. Moreover, the miniaturized mode volume in CBR allows the integration of CQD lasers with an unprecedentedly high density above 2100 pixels per inch. Overall, the proposed low-threshold, stable and compactly integrated CQD CBR laser array would advance the development of CQD laser for practical applications.
胶体量子点(CQD)由于其波长可调性和低光学增益阈值,是具有吸引力的增益介质。因此,CQD激光器,尤其是表面发射激光器,是显示、传感和通信领域很有前景的候选者。然而,要实现具有高稳定性和集成密度的低阈值表面发射CQD激光阵列仍然具有挑战性。为此,有必要将CQD材料的改进与激光腔相结合。在此,我们开发了具有核/中间层/渐变壳结构的高质量CQD材料,以实现低增益阈值和高稳定性。随后,基于CQD集成圆形布拉格谐振器(CBR)的表面发射激光器得以实现,其中接近单位的模式限制因子(Γ为89%)和归因于CBR强场限制的22.7的高珀塞尔因子使得低激射阈值为17 μJ/cm²,比CQD垂直腔表面发射激光器的阈值(56 μJ/cm²)低70%。受益于CQD材料和激光腔的高质量,CQD CBR激光器能够在室温下连续稳定运行1000小时(对应于3.63×10⁶个脉冲)。这一性能在由纳米晶体组成的溶液处理激光器中是最好的。此外,CBR中最小化的模式体积允许以每英寸超过2100像素的前所未有的高密度集成CQD激光器。总体而言,所提出的低阈值、稳定且紧凑集成的CQD CBR激光阵列将推动CQD激光器在实际应用中的发展。