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Contact Pin-Printing onto Porous Silicon for Creating Microarrays with High Chemical Diversity

  • Ian J. Horner
  • , Nadine D. Kraut
  • , Caley A. Richardson
  • , Bernandie Jean
  • , Alyssa M. Rook
  • , Frank V. Bright
  • SUNY Buffalo
  • PPG Industries, Inc.
  • Lenape Valley Regional High School
  • Duquesne University

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

We explore the size and spatial microheterogeneity of contact pin-printed spots formed on porous silicon (pSi). Glycerol was contact printed at room temperature onto as-prepared, hydrogen-passivated pSi (ap-pSi) using 50 or 200 μm diameter solid pins. The pSi was then subjected to a strong oxidizing environment (gaseous O3) and washed to remove the glycerol masks. The glycerol-free regions were converted to oxidized pSi (ox-pSi); the glycerol-coated regions were protected from O3, but not entirely. The final array is described as circularly shaped "ap-pSi" regions on a field of ox-pSi. When comparing the areas outside and inside the glycerol-masked pSi spots, one finds dramatic differences in the Si-O-Si, SiH x (x = 1-3) and O y SiH x (y, x = 1-3) levels with a spatially dependent continuum of compositions across the spot diameter. Experimental conditions could be adjusted to tune the final ap-pSi spot diameter and edge widths from 90 μm to 520 μm and 20 μm to 130 μm, respectively. The resulting ap-pSi spot diameter is explained by using molecular kinetic theory and time-dependent glycerol imbibement into the pSi within a one-dimensional Darcy's law model.

Original languageEnglish
Pages (from-to)1662-1675
Number of pages14
JournalApplied Spectroscopy
Volume70
Issue number10
DOIs
StatePublished - Oct 1 2016

Keywords

  • contact pin-printing
  • infrared
  • infrared imaging
  • microarrays
  • ozone
  • photoluminescence
  • porosity
  • Porous silicon

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