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置于光子莫尔超晶格上的单层二维材料二次谐波产生的巨大增强。

Giant enhancement of second harmonic generation from monolayer 2D materials placed on photonic moiré superlattice.

作者信息

Ning Tingyin, Zhao Lina, Huo Yanyan, Cai Yangjian, Ren Yingying

机构信息

Shandong Provincial Engineering and Technical Center of Light Manipulations & Shandong Provincial Key Laboratory of Optics and Photonic Device, School of Physics and Electronics, Shandong Normal University, Jinan 250358, China.

出版信息

Nanophotonics. 2023 Oct 10;12(21):4009-4016. doi: 10.1515/nanoph-2023-0124. eCollection 2023 Oct.

Abstract

We numerically investigate second harmonic generation (SHG) from a monolayer of 2D-material placed on photonic moiré superlattice fabricated by dielectric materials. The greatly enhanced local field at the resonance modes of moiré superlattice can dramatically boost the SHG response in 2D materials. Considering a typical 2D-material MoS monolayer placed on a photonic moiré superlattice of a twist angle 9.43°, the maximum SHG conversion efficiency reaches up to 10 at a relatively low intensity of fundamental light 1 kW/cm, which is around 14 orders of magnitude larger than that from the monolayer placed on a flat dielectric slab without moiré superlattices. The SHG conversion efficiency from the monolayer can be further enhanced with the decrease of the twist angles of moiré superlattice due to the even more confinement of local field. The flat bands in the moiré superlattices formed by the small twist angles can particularly ensure the efficiency even under wide-angle illuminations. The results indicate that photonic moiré superlattice which can tightly confine light is a promising platform for efficient nonlinear optics.

摘要

我们对放置在由介电材料制成的光子莫尔超晶格上的二维材料单层中的二次谐波产生(SHG)进行了数值研究。莫尔超晶格共振模式下大幅增强的局部场能够显著提高二维材料中的SHG响应。考虑将典型的二维材料硫化钼单层放置在扭转角为9.43°的光子莫尔超晶格上,在相对较低的基波光强度1 kW/cm下,最大SHG转换效率高达10,这比放置在没有莫尔超晶格的平坦介电平板上的单层大大约14个数量级。由于局部场的进一步限制,随着莫尔超晶格扭转角的减小,单层的SHG转换效率可以进一步提高。由小扭转角形成的莫尔超晶格中的平带尤其能够确保即使在广角照明下也能保持效率。结果表明,能够紧密限制光的光子莫尔超晶格是一个有前途的高效非线性光学平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e62/11501670/3bd45a34e780/j_nanoph-2023-0124_fig_001.jpg

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