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六方氮化硼薄晶体中超慢声子极化激元的选择性激发与成像

Selective excitation and imaging of ultraslow phonon polaritons in thin hexagonal boron nitride crystals.

作者信息

Ambrosio Antonio, Tamagnone Michele, Chaudhary Kundan, Jauregui Luis A, Kim Philip, Wilson William L, Capasso Federico

机构信息

1Center for Nanoscale Systems, Harvard University, Cambridge, MA 02138 USA.

2Department of Physics, Harvard University, Cambridge, MA 02138 USA.

出版信息

Light Sci Appl. 2018 Jun 27;7:27. doi: 10.1038/s41377-018-0039-4. eCollection 2018.

Abstract

We selectively excite and study two new types of phonon-polariton guided modes that are found in hexagonal boron nitride thin flakes on a gold substrate. Such modes show substantially improved confinement and a group velocity that is hundreds of times slower than the speed of light, thereby providing a new way to create slow light in the mid-infrared range with a simple structure that does not require nano-patterning. One mode is the fundamental mode in the first Restrahlen band of hexagonal boron nitride thin crystals on a gold substrate; the other mode is equivalent to the second mode of the second Restrahlen band of hexagonal boron nitride flakes that are suspended in vacuum. The new modes also couple efficiently with incident light at the hexagonal boron nitride edges, as we demonstrate experimentally using photo-induced force microscopy and scanning near-field optical microscopy. The high confinement of these modes allows for Purcell factors that are on the order of tens of thousands directly above boron nitride and a wide band, with new perspectives for enhanced light-matter interaction. Our findings demonstrate a new approach to engineering the dispersion of polaritons in 2D materials to improve confinement and light-matter interaction, thereby paving the way for new applications in mid-infrared nano-optics.

摘要

我们选择性地激发并研究了在金衬底上的六方氮化硼薄片中发现的两种新型声子-极化激元导模。这些模式显示出显著改善的限制能力,并且群速度比光速慢数百倍,从而提供了一种在中红外范围内通过不需要纳米图案化的简单结构来产生慢光的新方法。一种模式是金衬底上六方氮化硼薄晶体的第一Restrahlen带中的基模;另一种模式等同于悬浮在真空中的六方氮化硼薄片的第二Restrahlen带中的第二模。正如我们使用光诱导力显微镜和扫描近场光学显微镜通过实验所证明的,这些新模式还能在六方氮化硼边缘与入射光有效耦合。这些模式的高限制能力使得在氮化硼正上方及宽波段处的珀塞尔因子达到数万量级,为增强光与物质的相互作用提供了新视角。我们的研究结果展示了一种在二维材料中设计极化激元色散以改善限制能力和光与物质相互作用的新方法,从而为中红外纳米光学的新应用铺平了道路。

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