Tuning the chemiluminescence of a luminol flow using plasmonic nanoparticles
Управление хемилюминесценцией потока люминола с помощью плазмонных наночастиц
2016-05-19
SCID: 54.1/vrah862t
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Purcell effectluminol chemiluminescencemicrofluidic deviceoptical density of statesplasmonic nanoparticles
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Abstract (AI)
We have discovered a strong increase in the intensity of the chemiluminescence of a luminol flow and a dramatic modification of its spectral shape in the presence of metallic nanoparticles. We observed that pumping gold and silver nanoparticles into a microfluidic device fabricated in polydimethylsiloxane prolongs the glow time of luminol. We have demonstrated that the intensity of chemiluminescence in the presence of nanospheres depends on the position along the microfluidic serpentine channel. We show that the enhancement factors can be controlled by the nanoparticle size and material. Spectrally, the emission peak of luminol overlaps with the absorption band of the nanospheres, which maximizes the effect of confined plasmons on the optical density of states in the vicinity of the luminol emission peak. These observations, interpreted in terms of the Purcell effect mediated by nano-plasmons, form an essential step toward the development of microfluidic chips with gain media. Practical implementation of the discovered effect will include improving the detection limits of chemiluminescence for forensic science, research in biology and chemistry, and a number of commercial applications.
Key Findings
1
Chemiluminescence intensity varies with position along the microfluidic serpentine channel when nanospheres are present.
2
Enhancement factors are tunable through nanoparticle size and material, with spectral overlap between luminol emission and nanoparticle absorption maximizing the effect.
3
Gold and silver nanoparticles introduced into a polydimethylsiloxane microfluidic device prolong the duration of luminol glow.
4
Metallic nanoparticles strongly increase luminol-flow chemiluminescence intensity and dramatically modify its emission spectrum.
5
The observations are consistent with a plasmon-mediated Purcell effect and support development of microfluidic chips with gain media and improved chemiluminescence detection.
Research Object
luminol chemiluminescence flow in a microfluidic channel containing gold and silver plasmonic nanoparticles
Research Subject
nanoparticle-controlled enhancement, spectral modification, and prolonged emission of luminol chemiluminescence via confined plasmon-mediated Purcell effects
Publication Details
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2016-05-19
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