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research article

Photonic Nanojet Array for Fast Detection of Single Nanoparticles in a Flow

Yang, Hui  
•
Cornaglia, Matteo  
•
Gijs, Martin A. M.  
2015
Nano Letters

We detect by optical microscopy Au and fluorescent nanopartides (NPs) during their motion in water based medium, using an array of dielectric microspheres that are patterned in a microwell array template. The Microspheres act as lenses focusing the light originating from a microscope objective into so-called photonic nanojets that expose the medium Within a microfluidic channel When a NP is randomly transported through a nanojet, its backscattered light (for a bare Au NP) or its fluorescent emission is instantaneously detected by video microscopy. Au NPs down to 50 nit in size, as well as fluorescent NPs down to 20 rim in size, are observed by using a low magnification/low numerical aperture microscope objective in bright field or fluorescence mode, respectively. Compared to the NPs present outside of the photonic nanojets, the light scattering or fluorescence intensity of the NPs in the nanojets is typically enhanced by tip to a factor of The experimental intensity is found to be proportional to the area Occupied by the NP in the nanojet. The technique is also used for immunodectection of biomolecules immobilized on At NPs in buffer and; in future, it may develop into a versatile tool to detect nanometric objects of environmental or biological importance, such as NPs, viruses, or other biological agents.

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Type
research article
DOI
10.1021/nl5044067
Web of Science ID

WOS:000351188000044

Author(s)
Yang, Hui  
Cornaglia, Matteo  
Gijs, Martin A. M.  
Date Issued

2015

Publisher

American Chemical Society

Published in
Nano Letters
Volume

15

Issue

3

Start page

1730

End page

1735

Subjects

Photonic nanojet

•

microfluidics

•

microsphere

•

Microlens

•

nanoparticle

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMIS2  
Available on Infoscience
May 29, 2015
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/114566
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