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Updated: Jul 24, 2026

Fabrication And Characterization Of Photonic Crystal Slow Light Waveguides And Cavities
Published on: November 30, 2012
Anomalous Scaling Enables Lower-Threshold and Ultrafast Switchable Nanolasing in a Phase-Pure Quasi-2D Perovskite
Wenna Du1,2, Yiyang Gong1,2, Aocheng Wang1,3
1CAS Key Laboratory of Standardization and Measurement for Nanotechnology, National Center for Nanoscience and Technology, Beijing 100190, People's Republic of China.
None:
Semiconductor micro/nanolasers have been investigated for several decades and hold great potential in bioimaging, high-density storage, and optical communications. Nevertheless, their performance typically declines as the laser cavity size decreases due to reduced mode volume, increased losses, and thermal challenges. Herein, we report an anomalous scaling law in quasi-2D Ruddlesden-Popper perovskite microplates, where smaller cavities exhibit lower thresholds. We identify the origin of this behavior as biexciton lasing dynamics strongly modulated by size-dependent exciton reabsorption. In smaller microcavities, suppressed reabsorption enhances photon recycling, which, in turn, promotes efficient biexciton gain and facilitates a four-level cascade lasing process. This mechanism not only inverts the expected size-performance trend but also enables ultrafast lasing switching on picosecond time scales, as directly probed by transient spectroscopy. These results indicate the critical role of photon reabsorption in tailoring light-matter interactions at the nanoscale and provide a practical strategy for designing high-performance laser sources toward integrated quantum photonics and ultrafast optical computing.
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