EP1595120B1

Metal coated nanocrystalline silicon as an active surface enhanced raman spectroscopy (sers) substrate

Abstract

The methods, systems 400 and apparatus disclosed herein concern metal 150 impregnated porous substrates 110, 210. Certain embodiments of the invention concern methods for producing metal-coated porous silicon substrates 110, 210 that exhibit greatly improved uniformity and depth of penetration of metal 150 deposition. The increased uniformity and depth allow improved and more reproducible Raman detection of analytes. In exemplary embodiments of the invention, the methods may comprise oxidation of porous silicon 110, immersion in a metal salt solution 130, drying and thermal decomposition of the metal salt 140 to form a metal deposit 150. In other exemplary embodiments of the invention, the methods may comprise microfluidic impregnation of porous silicon substrates 210 with one or more metal salt solutions 130. Other embodiments of the invention concern apparatus and/or systems 400 for Raman detection of analytes, comprising metal-coated porous silicon substrates 110, 210 prepared by the disclosed methods.

EP1595120B1, drawing sheet 1
Sheet 1 of 8

Term

Term ended

Expired 7 October 2023, 3 years ago.

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31 claims: 12 independent, 19 dependent

  1. 1
    A method comprising:(a) providing a metal-coated, porous substrate (240, 340);(b) exposing the substrate to a sample comprising one or more analytes;(c) using laser excitation and Raman spectroscopy to detect and/or identify one or more analytes, characterized in that the substrate comprises a metal layer having a uniform depth profile of a metal penetration depth of at least 3 µ m, which layer is formed on the substrate by thermal decomposition of a solution of metal salt (220).
  2. 4
    The method of any one of claims 1 to 3, wherein metal nanoparticles are added to the metal-coated porous substrate.
  3. 5
    The method of any one of claims 1 to 4, wherein the Raman spectroscopy is surface enhanced Raman spectroscopy (SERS), surface enhanced resonance Raman spectroscopy (SERRS) hyper-Raman and/or coherent anti-Stokes Raman spectroscopy (CARS).
  4. 6
    The method of any one of claims 1 to 5, wherein the metal is selected from silver, gold, platinum, copper or aluminum.
  5. 7
    The method of any one of claims 1 to 6, wherein the analyte is selected from the group consisting of an amino acid, peptide, polypeptide, protein, glycoprotein, lipoprotein, nucleoside, nucleotide, purine, pyrimidine, oligonucleotide, nucleic acid, sugar, carbohydrate, oligosaccharide, polysaccharide, fatty acid, lipid, hormone, metabolite, cytokine, chemokine, receptor, neurotransmitter, antigen, allergen, antibody, substrate, cofactor, inhibitor, drug, pharmaceutical, nutrient, prion, toxin, poison, explosive, pesticide, chemical warfare agent, biohazardous agent, bacteria, virus, radioisotope, vitamin, heterocyclic aromatic compound, carcinogen, mutagen, narcotic, amphetamine, barbiturate, hallucinogen, waste product and contaminant.
  6. 9
    The method of any one of claims 1 to 8, wherein the one or more analytes are labeled with one or more Raman labels.
  7. 11
    The method of any one of claims 1 to 10, wherein one or more capture molecules is/are attached to the metal-coated porous silicon substrate.
  8. 13
    The method of any one of claims 8 to 12, further comprising detecting one or more nucleotides, purines or pyrimidines at the single molecule level.
  9. 15
    A metal-coated nanocrystalline porous silicon substrate (240, 340) for Raman spectroscopy wherein the substrate comprises a metal layer (450) having a uniform depth profile of a metal penetration depth of at least 3 µm, which layer is formed on the substrate by thermal decomposition of a solution of metal salt (430).
  10. 20
    The apparatus of any one of claims 18 or 19, further comprising a reaction chamber (31 0) in fluid communication with the flow through cell (330).
  11. 23
    A method of producing a metal-coated, nanoporous silicon substrate (240, 340) for Raman spectroscopy comprising:(i) oxidizing the nanoporous silicon on the substrate to form a layer of silicon dioxide (420), (ii) immersing the oxidized nanoporous silicon in at least one metal salt solution (430);(iii) removing excess of the at least one metal salt solution;(iv) drying the at least one metal salt solution to form a thin layer of dry metal salt (440) on the nanoporous surface, and (v) heating the coated surface of step (iv) at a temperature above 573°K, thereby converting an anionic species comprised in the at least one metal salt solution into a gaseous species, wherein the heating thermally decomposes the metal salt to form a metal layer (450) on the silicon substrate, the metal layer having a uniform penetration depth of at least 3µm.
  12. 31
    A metal-coated nanoporous silicon substrate comprising a metal layer (450) having a uniform depth profile of a metal penetration depth of at least 3 µm, which substrate is produced by the method of any one of claims 23 to 30.