Literature DB >> 30462098

Observation of Mie ripples in the synchrotron Fourier transform infrared spectra of spheroidal pollen grains.

R Blümel, R Lukacs, B Zimmermann, M Bağcıoğlu, A Kohler.   

Abstract

Conceptually, biological cells are dielectric, photonic resonators that are expected to show a rich variety of shape resonances when exposed to electromagnetic radiation. For spheroidal cells, these shape resonances may be predicted and analyzed using the Mie theory of dielectric spheres, which predicts that a special class of resonances, i.e., whispering gallery modes (WGMs), causes ripples in the absorbance spectra of spheroidal cells. Indeed, the first tentative indication of the presence of Mie ripples in the synchrotron Fourier transform infrared (SFTIR) absorbance spectra of Juniperus chinensis pollen has already been reported [Analyst140, 3273 (2015)ANLYAG0365-488510.1039/C5AN00401B]. To show that this observation is no isolated incidence, but a generic spectral feature that can be expected to occur in all spheroidal biological cells, we measured and analyzed the SFTIR absorbance spectra of Cunninghamia lanceolata, Juniperus chinensis, Juniperus communis, and Juniperus excelsa. All four pollen species show Mie ripples. Since the WGMs causing the ripples are surface modes, we propose ripple spectroscopy as a powerful tool for studying the surface properties of spheroidal biological cells. In addition, our paper draws attention to the fact that shape resonances need to be taken into account when analyzing (S)FTIR spectra of isolated biological cells since shape resonances may distort the shape or mimic the presence of chemical absorption bands.

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Year:  2018        PMID: 30462098     DOI: 10.1364/JOSAA.35.001769

Source DB:  PubMed          Journal:  J Opt Soc Am A Opt Image Sci Vis        ISSN: 1084-7529            Impact factor:   2.129


  1 in total

1.  The effect of deformation of absorbing scatterers on Mie-type signatures in infrared microspectroscopy.

Authors:  Maren Anna Brandsrud; Reinhold Blümel; Johanne Heitmann Solheim; Achim Kohler
Journal:  Sci Rep       Date:  2021-02-25       Impact factor: 4.379

  1 in total

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