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通过在p-NiO/Au薄膜上自组装金纳米颗粒实现局域表面等离子体共振(LSPR)与法布里-珀罗模式之间的超强耦合。

Realization of ultrastrong coupling between LSPR and Fabry-Pérot mode via self-assembly of Au-NPs on p-NiO/Au film.

作者信息

Garcia Alexis Angelo R, Mao Cheng-An, Cheng Wen-Hui Sophia

机构信息

Department of Materials Science and Engineering, National Cheng Kung University, Tainan, Taiwan.

Hierarchical Green-Energy Materials (Hi-GEM) Research Center, National Cheng Kung University, Tainan, Taiwan.

出版信息

Nanophotonics. 2024 Jan 19;13(14):2501-2512. doi: 10.1515/nanoph-2023-0763. eCollection 2024 Jun.

Abstract

The realization of higher coupling strengths between coupled resonant modes enables exploration of compelling phenomena in diverse fields of physics and chemistry. In this study, we focus on the modal coupling between localized surface plasmon resonance (LSPR) of Au nanoparticles (Au-NPs) and Fabry-Pérot mode (p-NiO/Au film). The effects of nanoparticle size, projected surface coverage (PSC), interparticle distance (IPD), and arrangement to the coupling strength between the two modes are theoretically investigated using finite-difference time-domain (FDTD) method. Au-NPs/p-NiO/Au film (ANA) nanostructures with NPs size of 10 nm, 30 nm, and 50 nm are considered. Numerical calculations point to larger size and higher projected surface coverage (also smaller IPD) of NPs as pre-eminent factors in enhancing the strength of modal coupling. ANA nanostructure with NPs size of 30 nm (ANA-30) and 50 nm (ANA-50) are experimentally fabricated via a facile air-liquid interface self-assembly. The fabricated nanodevices exhibit immense Rabi splitting energies of 655 meV (ANA-30) and 770 meV (ANA-50), and thus fulfill the ultrastrong coupling condition with remarkable splitting energy to bare (plasmon) energy ratio of 0.35 (ANA-30) and 0.4 (ANA-50). The physical insights presented in this study, together with the simple and scalable fabrication process, establish a viable approach to realize stronger coupling between LSPR and Fabry-Pérot mode in metal NPs/dielectric/metal film systems. This will be vital to take advantage of the promising performance enhancements of plasmonic-based nanostructures under strongly coupled regimes in areas such as solar to fuel conversion, sensing, opto-electronics, and quantum applications.

摘要

实现耦合共振模式之间更高的耦合强度,有助于探索物理和化学各个领域中引人注目的现象。在本研究中,我们聚焦于金纳米颗粒(Au-NPs)的局域表面等离子体共振(LSPR)与法布里-珀罗模式(p-NiO/Au薄膜)之间的模式耦合。使用时域有限差分(FDTD)方法,从理论上研究了纳米颗粒尺寸、投影表面覆盖率(PSC)、颗粒间距离(IPD)以及排列方式对这两种模式之间耦合强度的影响。考虑了纳米颗粒尺寸分别为10纳米、30纳米和50纳米的Au-NPs/p-NiO/Au薄膜(ANA)纳米结构。数值计算表明,纳米颗粒更大的尺寸和更高的投影表面覆盖率(以及更小的IPD)是增强模式耦合强度的主要因素。通过简便的气-液界面自组装实验制备了纳米颗粒尺寸为30纳米(ANA-30)和50纳米(ANA-50)的ANA纳米结构。所制备的纳米器件展现出高达655毫电子伏特(ANA-30)和770毫电子伏特(ANA-50)的巨大拉比分裂能,因此满足超强耦合条件,裸(等离子体)能量比的显著分裂能分别为0.35(ANA-30)和0.4(ANA-50)。本研究中呈现的物理见解,连同简单且可扩展的制备过程,为在金属纳米颗粒/电介质/金属薄膜系统中实现LSPR与法布里-珀罗模式之间更强的耦合建立了一种可行的方法。这对于在太阳能到燃料转换、传感、光电子学和量子应用等领域利用强耦合状态下基于等离子体的纳米结构的优异性能提升至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c88/11636521/7cc4539472a9/j_nanoph-2023-0763_fig_001.jpg

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