| Literature DB >> 32108108 |
Can Huang1, Chen Zhang1, Shumin Xiao1,2, Yuhan Wang1, Yubin Fan1, Yilin Liu1, Nan Zhang1, Geyang Qu1, Hongjun Ji1, Jiecai Han2, Li Ge3,4, Yuri Kivshar5, Qinghai Song6,7.
Abstract
The development of classical and quantum information-processing technology calls for on-chip integrated sources of structured light. Although integrated vortex microlasers have been previously demonstrated, they remain static and possess relatively high lasing thresholds, making them unsuitable for high-speed optical communication and computing. We introduce perovskite-based vortex microlasers and demonstrate their application to ultrafast all-optical switching at room temperature. By exploiting both mode symmetry and far-field properties, we reveal that the vortex beam lasing can be switched to linearly polarized beam lasing, or vice versa, with switching times of 1 to 1.5 picoseconds and energy consumption that is orders of magnitude lower than in previously demonstrated all-optical switching. Our results provide an approach that breaks the long-standing trade-off between low energy consumption and high-speed nanophotonics, introducing vortex microlasers that are switchable at terahertz frequencies.Entities:
Year: 2020 PMID: 32108108 DOI: 10.1126/science.aba4597
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728