Mapping the electromagnetic field confinement in the gap of germanium nanoantennas with plasma wavelength of 4.5 micrometers
Картирование локализации электромагнитного поля в зазоре германиевых наноантенн с плазмонной длиной волны 4,5 мкм
2016-09-19
SCID: 54.1/awtpa92h
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electromagnetic energy density hotspotheavily doped germaniummid-infrared plasmonic nanoantennasnear-field photoexpansion mappingsubwavelength field confinement
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Abstract (AI)
We study plasmonic nanoantennas for molecular sensing in the mid-infrared made of heavily doped germanium, epitaxially grown with a bottom-up doping process and featuring free carrier density in excess of 1020 cm−3. The dielectric function of the 250 nm thick germanium film is determined, and bow-tie antennas are designed, fabricated, and embedded in a polymer. By using a near-field photoexpansion mapping technique at λ = 5.8 μm, we demonstrate the existence in the antenna gap of an electromagnetic energy density hotspot of diameter below 100 nm and confinement volume 105 times smaller than λ3.
Key Findings
1
Heavily doped germanium nanoantennas are developed for mid-infrared molecular sensing, with free-carrier density exceeding 10^20 cm−3.
2
Near-field photoexpansion mapping at λ = 5.8 μm directly demonstrates an electromagnetic energy-density hotspot in the antenna gap.
3
The antennas use a bottom-up epitaxial doping process and are embedded in a polymer.
4
The dielectric function of a 250 nm-thick germanium film is determined to support bow-tie antenna design.
5
The gap hotspot has a diameter below 100 nm and a confinement volume 10^5 times smaller than λ^3.
Research Object
Mid-infrared plasmonic bow-tie nanoantennas made of heavily doped germanium with a nanoscale gap
Research Subject
Electromagnetic field and energy-density confinement in the antenna gap, including the sub-100 nm hotspot and deeply subwavelength confinement volume
Publication Details
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2016-09-19
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