Center for Photonics and Quantum Materials, Skolkovo Institute of Science and Technology, Moscow, Russia.
Laboratories for Hybrid Photonics, Skolkovo Institute of Science and Technology, Moscow, Russia.
Nature. 2021 Sep;597(7877):493-497. doi: 10.1038/s41586-021-03866-9. Epub 2021 Sep 22.
The recent progress in nanotechnology and single-molecule spectroscopy paves the way for emergent cost-effective organic quantum optical technologies with potential applications in useful devices operating at ambient conditions. We harness a π-conjugated ladder-type polymer strongly coupled to a microcavity forming hybrid light-matter states, so-called exciton-polaritons, to create exciton-polariton condensates with quantum fluid properties. Obeying Bose statistics, exciton-polaritons exhibit an extreme nonlinearity when undergoing bosonic stimulation, which we have managed to trigger at the single-photon level, thereby providing an efficient way for all-optical ultrafast control over the macroscopic condensate wavefunction. Here, we utilize stable excitons dressed with high-energy molecular vibrations, allowing for single-photon nonlinear operation at ambient conditions. This opens new horizons for practical implementations like sub-picosecond switching, amplification and all-optical logic at the fundamental quantum limit.
纳米技术和单分子光谱学的最新进展为新兴的具有成本效益的有机量子光学技术铺平了道路,这些技术具有在环境条件下运行的有用设备中的潜在应用。我们利用与形成混合光物质状态(所谓的激子极化激元)的微腔强耦合的π共轭梯形聚合物来创建具有量子流体性质的激子极化激元凝聚体。遵循玻色统计,激子极化激元在经历玻色激发时表现出极端的非线性,我们已经设法在单光子水平上触发了这种非线性,从而为全光超快控制宏观凝聚波函数提供了一种有效的方法。在这里,我们利用高能分子振动修饰的稳定激子,允许在环境条件下进行单光子非线性操作。这为实用实现开辟了新的前景,如亚皮秒开关、放大和全光逻辑在基本量子极限。