Single virus particle mass detection using microresonators with nanoscale thickness
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- 10 March 2004
- journal article
- Published by AIP Publishing in Applied Physics Letters
- Vol. 84 (11) , 1976-1978
- https://doi.org/10.1063/1.1667011
Abstract
In this letter, we present the microfabrication and application of arrays of silicon cantilever beams as microresonator sensors with nanoscale thickness to detect the mass of individual virus particles. The dimensions of the fabricated cantilever beams were in the range of 4–5 μm in length, 1–2 μm in width and 20–30 nm in thickness. The virus particles we used in the study were vaccinia virus, which is a member of the Poxviridae family and forms the basis of the smallpox vaccine. The frequency spectra of the cantilever beams, due to thermal and ambient noise, were measured using a laser Doppler vibrometer under ambient conditions. The change in resonant frequency as a function of the virus particle mass binding on the cantilever beam surface forms the basis of the detection scheme. We have demonstrated the detection of a single vaccinia virus particle with an average mass of 9.5 fg. These devices can be very useful as components of biosensors for the detection of airborne virus particles.Keywords
This publication has 9 references indexed in Scilit:
- Single cell detection with micromechanical oscillatorsJournal of Vacuum Science & Technology B: Microelectronics and Nanometer Structures, 2001
- Direct and sensitive detection of a human virus by rupture event scanningNature Biotechnology, 2001
- Plenty of Room, IndeedScientific American, 2001
- Calibration of rectangular atomic force microscope cantileversReview of Scientific Instruments, 1999
- A Cellular Protein Binds Vaccinia Virus Late Promoters and Activates Transcription In VitroJournal of Virology, 1998
- Short cantilevers for atomic force microscopyReview of Scientific Instruments, 1996
- Adsorption-induced surface stress and its effects on resonance frequency of microcantileversJournal of Applied Physics, 1995
- Variability of dry mass as a fundamental biological property demonstrated for the case of Vaccinia virionsBiophysical Journal, 1980