Physics and Astronomy, Faculty of Physical Sciences and Engineering, ‡Nano Group, Faculty of Physical Sciences and Engineering, and §Optoelectronics Research Centre and Centre for Photonic Metamaterials, University of Southampton , Highfield, Southampton SO17 1BJ, United Kingdom.
Nano Lett. 2014 Jan 8;14(1):346-52. doi: 10.1021/nl404115g. Epub 2013 Dec 18.
We successfully demonstrate surface-enhanced infrared spectroscopy using arrays of indium tin oxide (ITO) plasmonic nanoantennas. The ITO antennas show a strongly reduced plasmon wavelength, which holds promise for ultracompact antenna arrays and extremely subwavelength metamaterials. The strong plasmon confinement and reduced antenna cross section allows ITO antennas to be integrated at extremely high densities with no loss in performance due to long-range transverse interactions. By further reducing the spacing of antennas in the arrays, we access the regime of plasmonic near field coupling where the response is enhanced for both Au and ITO devices. Ultracompact ITO antennas with high spatial and spectral selectivity in spectroscopic applications offer a viable new platform for infrared plasmonics, which may be combined with other functionalities of these versatile materials in devices.
我们成功地使用氧化铟锡(ITO)等离子体纳米天线阵列展示了表面增强红外光谱。ITO 天线表现出明显缩短的等离子体波长,有望实现超紧凑天线阵列和极亚波长超材料。强等离子体限制和减小的天线截面使得 ITO 天线能够以极高的密度集成,而不会因长程横向相互作用而导致性能下降。通过进一步减小阵列中天线的间距,我们可以进入等离子体近场耦合的区域,其中金和 ITO 器件的响应都得到增强。在光谱学应用中具有高空间和光谱选择性的超紧凑 ITO 天线为红外等离子体学提供了一个可行的新平台,它可以与这些多功能材料在器件中的其他功能相结合。