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通过单层WSe中激子里德堡态实现极化激元增强的非线性相互作用。

Enhanced nonlinear interaction of polaritons via excitonic Rydberg states in monolayer WSe.

作者信息

Gu Jie, Walther Valentin, Waldecker Lutz, Rhodes Daniel, Raja Archana, Hone James C, Heinz Tony F, Kéna-Cohen Stéphane, Pohl Thomas, Menon Vinod M

机构信息

Department of Physics, City College of New York, New York, NY, USA.

Department of Physics, Graduate Center of the City University of New York (CUNY), New York, NY, USA.

出版信息

Nat Commun. 2021 Apr 15;12(1):2269. doi: 10.1038/s41467-021-22537-x.

Abstract

Strong optical nonlinearities play a central role in realizing quantum photonic technologies. Exciton-polaritons, which result from the hybridization of material excitations and cavity photons, are an attractive candidate to realize such nonlinearities. While the interaction between ground state excitons generates a notable optical nonlinearity, the strength of such interactions is generally not sufficient to reach the regime of quantum nonlinear optics. Excited states, however, feature enhanced interactions and therefore hold promise for accessing the quantum domain of single-photon nonlinearities. Here we demonstrate the formation of exciton-polaritons using excited excitonic states in monolayer tungsten diselenide (WSe) embedded in a microcavity. The realized excited-state polaritons exhibit an enhanced nonlinear response ∼[Formula: see text] which is ∼4.6 times that for the ground-state exciton. The demonstration of enhanced nonlinear response from excited exciton-polaritons presents the potential of generating strong exciton-polariton interactions, a necessary building block for solid-state quantum photonic technologies.

摘要

强光学非线性在实现量子光子技术中起着核心作用。激子极化激元由材料激发与腔光子的杂化产生,是实现此类非线性的有吸引力的候选者。虽然基态激子之间的相互作用会产生显著的光学非线性,但这种相互作用的强度通常不足以达到量子非线性光学的范畴。然而,激发态具有增强的相互作用,因此有望进入单光子非线性的量子领域。在此,我们展示了在嵌入微腔的单层二硒化钨(WSe)中利用激发的激子态形成激子极化激元。实现的激发态极化激元表现出增强的非线性响应~[公式:见正文],约为基态激子的4.6倍。激发的激子极化激元增强非线性响应的演示展现了产生强激子极化激元相互作用的潜力,这是固态量子光子技术的必要组成部分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22d4/8050076/cf5a085b4b82/41467_2021_22537_Fig1_HTML.jpg

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