Abstract
We demonstrate extraordinarily spectrally selective narrowband mid-infrared radiation absorbance and thermal emittance with
resonant peak FWHM ~ 124 nm at l = 5.73 mm, corresponding to a Q-factor of ~ 92:3. This was achieved by harnessing
mode coupling between a plasmonic metal-insulator-metal (MIM) metasurface and molecular vibrational mode resonances,
with coupling constants ranging from h ~ 3.9% to 6.6%. In addition, thermal radiation emissivity is in close accordance to the
metamaterial absorbance spectrum, as described by Kirchhoff’s law of thermal radiation, and furthermore, emission was not
angle dependent, unlike that exhibited by grating-based emitters. The experimentally investigated MIM structures remained
stable up to a 250C heating temperature. MIM metamatrials with strong and spectrally tailored vibrational coupling behaviors
represent a new paradigm in photo-thermal energy conversion. The experimentally observed pronounced resonant coupling
behaviour was well described by finite-difference time-domain simulations of the plasmonic structure, where molecular vibration
contributions were modeled using the Lorenz oscillator approximation.
Supplementary materials
Title
Supplemental data
Description
These figures are supporting information for our article.
Actions