Title :
Optical Detection of Single Nanoparticles and Viruses
Author :
Ignatovich, Filipp V. ; Topham, David ; Novotny, Lukas
Author_Institution :
Inst. of Opt., Rochester Univ., NY
Abstract :
We have developed two different optical techniques for the detection of nanoscale particles. One of the methods is based on measuring the optical gradient force exerted on a nanoparticle as it passes through a confined optical field, and the other method uses a background-free interferometric scheme to detect the scattered field amplitude from a laser-irradiated particle. In both cases, the measured signal depends on the third power of the particle size (R3) as opposed to the R6 dependence inherent to traditional scattering-based detection methods. The weaker size dependence in our schemes leads to a better signal-to-noise ratio (SNR) for small particles. Similar to mass spectrometry, the first detection method influences the trajectory of a particle as it passes through a tightly focused laser beam. On the other hand, the second detection method combines an interferometer with a split detector that yields no signal in the absence of a particle. For both systems, we demonstrate real-time (1 ms) detection of single nanoparticles in a microfluidic system and discuss the limits of each detection approach
Keywords :
light interferometry; microfluidics; microorganisms; nanoparticles; nanotechnology; optical sensors; particle size; interferometry; laser-irradiated particle; microfluidic system; optical detection; optical gradient force; particle size; single nanoparticles; split detector; viruses; Force measurement; Nanoparticles; Optical detectors; Optical interferometry; Optical scattering; Particle measurements; Particle scattering; Power measurement; Size measurement; Viruses (medical); Interferometry; nanoparticles; optical gradient force; optical tweezers; quadrant photodetector; sensor; viruses;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2006.885086