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Nanoscale mapping and spectroscopy of non-radiative hyperbolic modes in hexagonal boron nitride nanostructures

机译:六方氮化硼纳米结构中非辐射双曲线模式的纳米级映射和光谱

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摘要

The inherent crystal anisotropy of hexagonal boron nitride (hBN) provides the ability to support hyperbolic phonon polaritons, i.e. polaritons that can propagate with very large wavevectors within the material volume, thereby enabling optical confinement to exceedingly small dimensions. Indeed, previous research has shown that nanometer-scale truncated nanocone hBN cavities, with deep subdiffractional dimensions, support three-dimensionally confined optical modes in the mid-infrared. Due to optical selection rules only a few of the many theoretically predicted modes have been observed experimentally via far-field reflection and scattering-type scanning near-field optical microscopy (s-SNOM). The photothermal induced resonance (PTIR) technique probes optical and vibrational resonances overcoming weak far-field emission by leveraging an atomic force microscope (AFM) probe to transduce local sample expansion caused by light absorption. Here we show that PTIR enables the direct observation of previously unobserved, dark hyperbolic modes of hBN nanostructures. Leveraging these optical modes and their wide range of angular and radial momenta could provide a new degree of control over the electromagnetic near-field concentration, polarization in nanophotonic applications.
机译:六方氮化硼(hBN)的固有晶体各向异性提供了支持双曲线声子极化子的能力,即可以在材料体积内以非常大的波矢传播的极化子,从而可以将光学限制到非常小的尺寸。确实,以前的研究表明,具有深亚衍射尺寸的纳米级截断纳米锥hBN腔支持中红外的三维受限光学模式。由于光学选择规则,通过远场反射和散射型扫描近场光学显微镜(s-SNOM)在实验上仅观察到许多理论上预测的模式中的少数模式。光热感应共振(PTIR)技术通过利用原子力显微镜(AFM)探针来转换由光吸收引起的局部样品膨胀,从而探测克服弱远场发射的光学和振动共振。在这里,我们显示PTIR能够直接观察hBN纳米结构的先前未观察到的暗双曲线模式。利用这些光学模式及其大范围的角动量和径向动量,可以对纳米光子应用中的电磁近场集中,极化提供新的控制程度。

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