Ultrasensitive mass sensing with nonlinear optics in a doubly clamped suspended carbon nanotube resonator

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Abstract

Nanomechanical resonator makes itself as an ideal system for ultrasensitive mass sensing due to its ultralow mass and high vibrational frequency. The mass sensing principle is due to the linear relationship of the frequency-shift and mass-variation. In this work, we will propose a nonlinear optical mass sensor based on a doubly clamped suspended carbon nanotube resonator in all-optical domain. The masses of external particles (such as nitric oxide molecules) landing onto the surface of carbon nanotube can be determined directly and accurately via using the nonlinear optical spectroscopy. This mass sensing proposed here may provide a nonlinear optical measurement technique in quantum measurements and environmental science. © 2013 AIP Publishing LLC.

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Chen, H. J., & Zhu, K. D. (2013). Ultrasensitive mass sensing with nonlinear optics in a doubly clamped suspended carbon nanotube resonator. Journal of Applied Physics, 114(21). https://doi.org/10.1063/1.4838936

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