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Published on: February 25, 2017
Collapse and Revival of Exciton-Polaritons in a Single Nanocavity Revealed by Ultrafast Nonlinear Microscopy
Liyu Zhang1, Zhongao Huang1, Kai Wang1,2
1Huazhong University of Science and Technology, Wuhan National Laboratory for Optoelectronics and School of Physics, Wuhan 430074, China.
Abstract:
The ultrafast dynamics of exciton-polaritons (EPs) in single plasmonic nanocavities are of fundamental interest due to extreme mode confinement (V∼10^{-6}λ^{3}), which enables few-exciton strong coupling and strong nonlinearity of EPs. However, directly probing transient evolutions of EPs in a single nanocavity has remained a challenge. Here, we develop an EP-resonant enhanced ultrafast difference-frequency generation (DFG) microscopy for directly visualizing EP dynamics in a single WSe_{2}-Au nanocavity. By scanning the pump photon energy across the polariton resonances and recording the DFG intensity as a function of pump-probe delay, we construct two-dimensional maps that directly visualize the transient evolution of the high and low energy branches of EPs. The maps reveal that the EPs collapse suddenly and then revive within 2 ps with a saturation threshold below 2 pJ, indicating strong nonlinearity of EPs in the few-exciton saturation regime. This Letter provides a new approach for visualizing the nonequilibrium dynamics of EPs in a single plasmonic nanocavity, offering important experimental evidence for ultrafast manipulation of EPs.

