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Updated: Apr 25, 2026

Optical Trapping of Nanoparticles
Published on: January 15, 2013
Physics of nanomechanical spectrometry of viruses
1Institute of Microelectronics of Madrid, CSIC. Isaac Newton 8 (PTM), Tres Cantos. E-28760 Madrid, Spain.
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 entities, the shape anisotropy and the interfacial adhesion. The model is applied to the case in which tobacco mosaic virus is randomly delivered to a silicon nitride cantilever. The theoretical framework opens the door to a novel paradigm for biological spectrometry as well as for measuring the Young's modulus of biological systems with minimal strains.

