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二硒化钼双层中的四极激子。

Quadrupolar excitons in MoSe bilayers.

作者信息

Jasiński Jakub, Hagel Joakim, Brem Samuel, Wietek Edith, Taniguchi Takashi, Watanabe Kenji, Chernikov Alexey, Bruyant Nicolas, Dyksik Mateusz, Surrente Alessandro, Baranowski Michał, Maude Duncan K, Malic Ermin, Plochocka Paulina

机构信息

Department of Experimental Physics, Faculty of Fundamental Problems of Technology, Wroclaw University of Science and Technology, Wroclaw, Poland.

Laboratoire National des Champs Magnétiques Intenses, EMFL, CNRS UPR 3228, Université Grenoble Alpes, Université Toulouse, Grenoble and Toulouse, France.

出版信息

Nat Commun. 2025 Feb 5;16(1):1382. doi: 10.1038/s41467-025-56586-3.

Abstract

The quest for platforms to generate and control exotic excitonic states has greatly benefited from the advent of transition metal dichalcogenide (TMD) monolayers and their heterostructures. Among the unconventional excitonic states, quadrupolar excitons-a superposition of two dipolar excitons with anti-aligned dipole moments-are of great interest for applications in quantum simulations and for the investigation of many-body physics. Here, we unambiguously demonstrate the emergence of quadrupolar excitons in natural MoSe homobilayers, whose energy shifts quadratically in electric field. In contrast to trilayer systems, MoSe homobilayers have many advantages, which include a larger coupling between dipolar excitons. Our experimental observations are complemented by many-particle theory calculations offering microscopic insights in the formation of quadrupolar excitons. Our results suggest TMD homobilayers as ideal platform for the engineering of excitonic states and their interaction with light and thus candidate for carrying out on-chip quantum simulations.

摘要

对产生和控制奇异激子态平台的探索,极大地受益于过渡金属二硫属化物(TMD)单层及其异质结构的出现。在非常规激子态中,四极激子——具有反平行偶极矩的两个偶极激子的叠加——在量子模拟应用和多体物理研究中备受关注。在这里,我们明确地证明了天然MoSe同质双层中四极激子的出现,其能量在电场中呈二次方变化。与三层系统相比,MoSe同质双层有许多优点,包括偶极激子之间更大的耦合。我们的实验观察得到了多粒子理论计算的补充,这些计算为四极激子的形成提供了微观见解。我们的结果表明,TMD同质双层是激子态工程及其与光相互作用的理想平台,因此是进行片上量子模拟的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/716f/11799382/7884a6d9da97/41467_2025_56586_Fig1_HTML.jpg

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