Duan Rui, Zhang Zitong, Xiao Lian, Zhao Xiaoxu, Thung Yi Tian, Ding Lu, Liu Zheng, Yang Jun, Ta Van Duong, Sun Handong
Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore, 637371, Singapore.
College of Physics and Optoelectronic Engineering, Harbin Engineering University, Harbin, 150001, China.
Adv Mater. 2022 Apr;34(13):e2108884. doi: 10.1002/adma.202108884. Epub 2022 Jan 28.
The realization of efficient on-chip microlasers with scalable fabrication, ultralow threshold, and stable single-frequency operation is always desired for a wide range of miniaturized photonic systems. Herein, an effective way to fabricate nanostructures- whispering-gallery-mode (WGM) lasers by drop-casting CdSe/CdS@Cd Zn S core/buffer-shell@graded-shell nanoplatelets (NPLs) dispersion onto silica microspheres is presented. Benefiting from the excellent gain properties from the interface engineered core/hybrid shell NPLs and high-quality factor WGM resonator from excellent optical field confinement, the proposed room-temperature NPLs-WGM microlasers show a record-low lasing threshold of 3.26 µJ cm under nanosecond laser pumping among all colloidal NPLs-based lasing demonstrations. The presence of sharp discrete transverse electric- and magnetic-mode spikes, the inversely proportional dependence of the free spectra range on microsphere sizes and the polarization anisotropy of laser output represent the first direct experimental evidence for NPLs-WGM lasing nature, which is verified theoretically by the computed electric-field distribution inside the microcavity. Remarkably, a stable single-mode lasing output with an ultralow lasing threshold of 3.84 µJ cm is achieved by the Vernier effect through evanescent field coupling. The results highlight the significance of interface engineering on the optimization of gain properties of heterostructured nanomaterials and shed light on developing future miniaturized tunable coherent light sources.
对于广泛的小型化光子系统而言,一直渴望实现具有可扩展制造、超低阈值和稳定单频运行的高效片上微激光器。在此,提出了一种通过将CdSe/CdS@CdZnS核/缓冲壳@渐变壳纳米片(NPLs)分散液滴铸到二氧化硅微球上来制造纳米结构——回音壁模式(WGM)激光器的有效方法。得益于界面工程化的核/混合壳NPLs的优异增益特性以及优异光场限制带来的高品质因子WGM谐振器,所提出的室温NPLs-WGM微激光器在所有基于胶体NPLs的激光演示中,在纳秒激光泵浦下显示出创纪录的低激光阈值3.26 μJ/cm²。尖锐的离散横向电模和磁模尖峰的存在、自由光谱范围与微球尺寸的反比关系以及激光输出的偏振各向异性代表了NPLs-WGM激光特性的首个直接实验证据,这通过计算微腔内的电场分布在理论上得到了验证。值得注意的是,通过倏逝场耦合的游标效应实现了具有3.84 μJ/cm²超低激光阈值的稳定单模激光输出。这些结果突出了界面工程在优化异质结构纳米材料增益特性方面的重要性,并为开发未来的小型化可调谐相干光源提供了启示。