2014
DOI: 10.1038/srep06051
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Physics of Nanomechanical Spectrometry of Viruses

Abstract: There is an emerging need of nanotools able to quantify the mechanical properties of single biological entities. A promising approach is the measurement of the shifts of the resonant frequencies of ultrathin cantilevers induced by the adsorption of the studied biological systems. Here, we present a detailed theoretical analysis to calculate the resonance frequency shift induced by the mechanical stiffness of viral nanotubes. The model accounts for the high surface-to-volume ratio featured by single biological … Show more

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Cited by 37 publications
(46 citation statements)
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“…Hence, the resulting frequency shift is the combination of all three mentioned parameters. In addition, the value of frequency shift depends also on the considered vibrational mode through a mode shape [28]. Fig.…”
Section: Resultsmentioning
confidence: 99%
“…Hence, the resulting frequency shift is the combination of all three mentioned parameters. In addition, the value of frequency shift depends also on the considered vibrational mode through a mode shape [28]. Fig.…”
Section: Resultsmentioning
confidence: 99%
“…Nanomechanical resonators have been used in a wide range of demanding sensor applications such as gas sensing [1][2][3], single-molecule mass sensing [4], single-protein [5] and neutral-particle [6] mass spectrometry, force sensing [7,8], and inertial imaging [9]. A common trend in recent years has been the exploitation of higher-order modes of a mechanical sensor in mass [5,6,[10][11][12][13][14][15], force [7,8,16], stiffness [13,17], and spatial sensing [9,18,19] where the extra information obtained from the higher-order modes usually expands the types of measurements and increases the sensitivity at the same time [20,21]. Higher-order modes can be utilized for numerous applications, such as quality factor control [22], mechanical vibration registers [23], or phonon cavities [24,25].…”
Section: Introductionmentioning
confidence: 99%
“…More generally, nanoresonators can extend proteomics to high mass biomolecules (like complex of proteins or virus) [3,13]. There is also an intense activity in the NEMS community related to the study of oscillators in their fundamental quantum mode using reciprocal interaction of optical micro cavity with a mechanical resonator [14][15][16].…”
Section: Introductionmentioning
confidence: 99%