Tang Yuxiang, Zhang Yanbin, Liu Qirui, Wei Ke, Cheng Xiang'ai, Shi Lei, Jiang Tian
College of Advanced Interdisciplinary Studies, National University of Defense Technology, 410073, Changsha, China.
Key Laboratory of Micro- and Nano-Photonic Structures (Ministry of Education), and State Key Laboratory of Surface Physics, Department of Physics, Fudan University, 200433, Shanghai, China.
Light Sci Appl. 2022 Apr 14;11(1):94. doi: 10.1038/s41377-022-00754-3.
Searching for ideal materials with strong effective optical nonlinear responses is a long-term task enabling remarkable breakthroughs in contemporary quantum and nonlinear optics. Polaritons, hybridized light-matter quasiparticles, are an appealing candidate to realize such nonlinearities. Here, we explore a class of peculiar polaritons, named plasmon-exciton polaritons (plexcitons), in a hybrid system composed of silver nanodisk arrays and monolayer tungsten-disulfide (WS), which shows giant room-temperature nonlinearity due to their deep-subwavelength localized nature. Specifically, comprehensive ultrafast pump-probe measurements reveal that plexciton nonlinearity is dominated by the saturation and higher-order excitation-induced dephasing interactions, rather than the well-known exchange interaction in traditional microcavity polaritons. Furthermore, we demonstrate this giant nonlinearity can be exploited to manipulate the ultrafast nonlinear absorption properties of the solid-state system. Our findings suggest that plexcitons are intrinsically strongly interacting, thereby pioneering new horizons for practical implementations such as energy-efficient ultrafast all-optical switching and information processing.
寻找具有强有效光学非线性响应的理想材料是一项长期任务,有望在当代量子和非线性光学领域取得重大突破。极化激元,即光与物质的杂化准粒子,是实现这种非线性的一个有吸引力的候选者。在此,我们在由银纳米盘阵列和单层二硫化钨(WS)组成的混合系统中探索一类特殊的极化激元,即表面等离子体激元 - 激子极化激元(plexcitons),由于其深亚波长局域特性,该系统在室温下表现出巨大的非线性。具体而言,全面的超快泵浦 - 探测测量表明,plexciton非线性主要由饱和以及高阶激发诱导的退相相互作用主导,而非传统微腔极化激元中著名的交换相互作用。此外,我们证明这种巨大的非线性可用于操纵固态系统的超快非线性吸收特性。我们的研究结果表明,plexcitons本质上具有强相互作用,从而为诸如节能超快全光开关和信息处理等实际应用开辟了新的前景。