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3D-printed phantoms for characterizing SERS nanoparticle detectability in turbid media.

Publication ,  Journal Article
Fales, AM; Strobbia, P; Vo-Dinh, T; Ilev, IK; Pfefer, TJ
Published in: The Analyst
September 2020

Recent advances in plasmonic nanoparticle synthesis have enabled extremely high per-particle surface-enhanced Raman scattering (SERS) efficiencies. This has led to the development of SERS tags for in vivo applications (e.g. tumor targeting and detection), providing high sensitivity and fingerprint-like molecular specificity. While the SERS enhancement factor is a major contributor to SERS tag performance, in practice the throughput and excitation-collection geometry of the optical system can significantly impact detectability. Test methods to objectively quantify SERS particle performance under realistic conditions are necessary to facilitate clinical translation. Towards this goal, we have developed 3D-printed phantoms with tunable, biologically-relevant optical properties. Phantoms were designed to include 1 mm-diameter channels at different depths, which can be filled with SERS tag solutions. The effects of channel depth and particle concentration on the detectability of three different SERS tags were evaluated using 785 nm laser excitation at the maximum permissible exposure for skin. Two of these tags were commercially available, featuring gold nanorods as the SERS particle, while the third tag was prepared in-house using silver-coated gold nanostars. Our findings revealed that the measured SERS intensity of tags in solution is not always a reliable predictor of detectability when applied in a turbid medium such as tissue. The phantoms developed in this work can be used to assess the suitability of specific SERS tags and instruments for their intended clinical applications and provide a means of optimizing new SERS device-tag combination products.

Duke Scholars

Published In

The Analyst

DOI

EISSN

1364-5528

ISSN

0003-2654

Publication Date

September 2020

Volume

145

Issue

18

Start / End Page

6045 / 6053

Related Subject Headings

  • Spectrum Analysis, Raman
  • Silver
  • Printing, Three-Dimensional
  • Metal Nanoparticles
  • Gold
  • Analytical Chemistry
  • 3401 Analytical chemistry
  • 0399 Other Chemical Sciences
  • 0301 Analytical Chemistry
 

Citation

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Fales, A. M., Strobbia, P., Vo-Dinh, T., Ilev, I. K., & Pfefer, T. J. (2020). 3D-printed phantoms for characterizing SERS nanoparticle detectability in turbid media. The Analyst, 145(18), 6045–6053. https://doi.org/10.1039/d0an01295e
Fales, Andrew M., Pietro Strobbia, Tuan Vo-Dinh, Ilko K. Ilev, and T Joshua Pfefer. “3D-printed phantoms for characterizing SERS nanoparticle detectability in turbid media.The Analyst 145, no. 18 (September 2020): 6045–53. https://doi.org/10.1039/d0an01295e.
Fales AM, Strobbia P, Vo-Dinh T, Ilev IK, Pfefer TJ. 3D-printed phantoms for characterizing SERS nanoparticle detectability in turbid media. The Analyst. 2020 Sep;145(18):6045–53.
Fales, Andrew M., et al. “3D-printed phantoms for characterizing SERS nanoparticle detectability in turbid media.The Analyst, vol. 145, no. 18, Sept. 2020, pp. 6045–53. Epmc, doi:10.1039/d0an01295e.
Fales AM, Strobbia P, Vo-Dinh T, Ilev IK, Pfefer TJ. 3D-printed phantoms for characterizing SERS nanoparticle detectability in turbid media. The Analyst. 2020 Sep;145(18):6045–6053.
Journal cover image

Published In

The Analyst

DOI

EISSN

1364-5528

ISSN

0003-2654

Publication Date

September 2020

Volume

145

Issue

18

Start / End Page

6045 / 6053

Related Subject Headings

  • Spectrum Analysis, Raman
  • Silver
  • Printing, Three-Dimensional
  • Metal Nanoparticles
  • Gold
  • Analytical Chemistry
  • 3401 Analytical chemistry
  • 0399 Other Chemical Sciences
  • 0301 Analytical Chemistry