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六方氮化硼层对WS多层膜中导激子-极化激元模式的影响。

The impact of hBN layers on guided exciton-polariton modes in WS multilayers.

作者信息

Lee Ho Seung, Sung Junghyun, Shin Dong-Jin, Gong Su-Hyun

机构信息

Department of Physics, Korea University, Seoul, 02841, South Korea.

出版信息

Nanophotonics. 2024 Jan 23;13(8):1475-1482. doi: 10.1515/nanoph-2023-0822. eCollection 2024 Apr.

Abstract

Guided exciton-polariton modes naturally exist in bare transition metal dichalcogenide (TMDC) layers due to self-hybridization between excitons and photons. However, these guided polariton modes exhibit a limited propagation distance owing to the substantial exciton absorption within the material. Here, we investigated the impact of hexagonal boron nitride (hBN) layers on guided exciton-polariton modes in WS multilayers. By integrating hBN layers, we demonstrate a notable enhancement in the quality of guided exciton-polariton modes. The hBN layers can reduce substrate surface roughness and provide surface protection for the WS layer, mitigating inhomogeneous broadening of the exciton resonance. Consequently, we experimentally observed that the propagation distance of polariton modes substantially increased with hBN layers. Additionally, the polariton spectrum broadened due to efficient exciton relaxation to the polariton states at lower energies. Comparison with simulation data emphasizes that the observed improvements are primarily attributed to enhanced exciton quality. The promising outcomes with hBN encapsulation suggest its potential to overcome strong excitonic losses of the guided exciton polariton in implementing nanophotonic devices. Furthermore, this approach provides a new avenue for exploring the novel physics of guided exciton-polariton modes and their potential applications in polariton-based all-optical integrated circuits.

摘要

由于激子与光子之间的自混合,在裸过渡金属二硫属化物(TMDC)层中自然存在引导激子 - 极化激元模式。然而,由于材料内部大量的激子吸收,这些引导极化激元模式的传播距离有限。在这里,我们研究了六方氮化硼(hBN)层对WS多层膜中引导激子 - 极化激元模式的影响。通过集成hBN层,我们证明了引导激子 - 极化激元模式的质量有显著提高。hBN层可以降低衬底表面粗糙度,并为WS层提供表面保护,减轻激子共振的非均匀展宽。因此,我们通过实验观察到,极化激元模式的传播距离随着hBN层的加入而大幅增加。此外,由于激子有效地弛豫到较低能量的极化激元态,极化激元光谱展宽。与模拟数据的比较强调,观察到的改进主要归因于激子质量的提高。hBN封装的良好结果表明,其在实现纳米光子器件中克服引导激子极化激元的强激子损耗方面具有潜力。此外,这种方法为探索引导激子 - 极化激元模式的新物理及其在基于极化激元的全光集成电路中的潜在应用提供了一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b1c/11636311/75e8f9b380a2/j_nanoph-2023-0822_fig_001.jpg

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