Lee Wendy S L, Kaltenecker Korbinian, Nirantar Shruti, Withayachumnankul Withawat, Walther Markus, Bhaskaran Madhu, Fischer Bernd M, Sriram Sharath, Fumeaux Christophe
Opt Express. 2017 Feb 20;25(4):3756-3764. doi: 10.1364/OE.25.003756.
As an alternative to metallic resonators, dielectric resonators can increase radiation efficiencies of metasurfaces at terahertz frequencies. Such subwavelength resonators made from low-loss dielectric materials operate on the basis of oscillating displacement currents. For full control of electromagnetic waves, it is essential that dielectric resonators operate around their resonant modes. Thus, understanding the nature of these resonances is crucial towards design implementation. To this end, an array of silicon resonators on a quartz substrate is designed to operate in transmission at terahertz frequencies. The resonator dimensions are tailored to observe their low-order modes of resonance at 0.58 THz and 0.61 THz respectively. We employ a terahertz near-field imaging technique to measure the complex near-fields of this dielectric resonator array. This unique method allows direct experimental observation of the first two fundamental resonances.
作为金属谐振器的替代方案,介质谐振器可以提高太赫兹频率下超表面的辐射效率。这种由低损耗介电材料制成的亚波长谐振器基于振荡位移电流工作。为了完全控制电磁波,介质谐振器必须在其谐振模式附近工作。因此,了解这些谐振的本质对于设计实现至关重要。为此,设计了一种在石英衬底上的硅谐振器阵列,以在太赫兹频率下进行透射操作。谐振器尺寸经过定制,分别在0.58太赫兹和0.61太赫兹观察其低阶谐振模式。我们采用太赫兹近场成像技术来测量该介质谐振器阵列的复近场。这种独特的方法允许直接实验观察前两个基本谐振。