Song Tingting, Chen Zhanxu, Zhang Wenbo, Lin Limin, Bao Yanjun, Wu Lin, Zhou Zhang-Kai
State Key Laboratory of Optoelectronic Materials and Technologies, School of Physics, Sun Yat-sen University, Guangzhou 510275, China.
School of Optoelectronic Engineering, Guang Dong Polytechnic Normal University, Guangzhou 510665, China.
Nanomaterials (Basel). 2019 Apr 7;9(4):564. doi: 10.3390/nano9040564.
Various plasmonic nanocavities possessing an extremely small mode volume have been developed and applied successfully in the study of strong light-matter coupling. Driven by the desire of constructing quantum networks and other functional quantum devices, a growing trend of strong coupling research is to explore the possibility of fabricating simple strong coupling nanosystems as the building blocks to construct complex systems or devices. Herein, we investigate such a nanocube-exciton building block (i.e. AuNC@J-agg), which is fabricated by coating Au nanocubes with excitonic J-aggregate molecules. The extinction spectra of AuNC@J-agg assembly, as well as the dark field scattering spectra of the individual nanocube-exciton, exhibit Rabi splitting of 100⁻140 meV, which signifies strong plasmon⁻exciton coupling. We further demonstrate the feasibility of constructing a more complex system of AuNC@J-agg on Au film, which achieves a much stronger coupling, with Rabi splitting of 377 meV. This work provides a practical pathway of building complex systems from building blocks, which are simple strong coupling systems, which lays the foundation for exploring further fundamental studies or inventing novel quantum devices.
各种具有极小模式体积的等离子体纳米腔已被开发出来,并成功应用于强光-物质耦合研究。受构建量子网络和其他功能性量子器件的需求驱动,强耦合研究的一个日益增长的趋势是探索制造简单的强耦合纳米系统作为构建复杂系统或器件的基石的可能性。在此,我们研究了这样一种纳米立方体-激子构建块(即AuNC@J-聚集体),它是通过用激子J-聚集体分子包覆金纳米立方体来制备的。AuNC@J-聚集体组装体的消光光谱以及单个纳米立方体-激子的暗场散射光谱显示出100⁻140毫电子伏特的拉比分裂,这表明存在强等离子体-激子耦合。我们进一步证明了在金膜上构建更复杂AuNC@J-聚集体系统的可行性,该系统实现了更强的耦合,拉比分裂为377毫电子伏特。这项工作提供了一条从简单的强耦合系统构建块构建复杂系统的实用途径,为进一步探索基础研究或发明新型量子器件奠定了基础。