4.6 Article

Structure-Function Relationships for Surface-Enhanced Raman Spectroscopy-Active Plasmonic Paper

期刊

JOURNAL OF PHYSICAL CHEMISTRY C
卷 120, 期 37, 页码 20789-20797

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcc.6b02019

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资金

  1. Air Force Office of Scientific Research [FA9550-11-1-0275, FA9550-09-1-0294]
  2. Air Force Research laboratory [FA8650-15-2-5518]
  3. Department of the Navy, Office of Naval Research [N00014-11-1-0729]
  4. National Science Foundation's MRSEC program [DMR-1121262]
  5. NDSEG graduate fellowship
  6. NSF graduate research fellowship
  7. National Research Council's Research Associateship Award
  8. Office of the Provost
  9. Office for Research
  10. Northwestern University Information Technology
  11. MRSEC program at the Materials Research Center [NSF DMR-1121262]
  12. International Institute for Nanotechnology
  13. State of Illinois, through the IIN

向作者/读者索取更多资源

Surface-enhanced Raman spectroscopy (SERS) is a powerful tool for, the specific, rapid, and nondestructive detection of small molecules. For detection applications, it is desirable to develop means for synthesizing SERS substrates that provide large and consistent Raman enhancement, are inexpensive and simple to synthesize, and are active for a wide variety of molecules. Here we demonstrate that nanoparticle colloids (ranging in size from 5 to 100 nm) that are purposely aggregated using electrolytes can be stabilized in the solid state using common filter paper. The SERS substrate enhancement factor (EF) is characterized using trans-1,2-bis(4-pyriclyl)ethylene, and it is observed that an intermediate aggregation state provides the largest substrate EF of similar to 3 x 10(4). Generalized Mie theory is used to investigate the relationship between nanoparticle aggregation extent, cluster geometry, and plasmonic enhancement. Overall; the electrodynamics simulations ate in good agreement with experimental EF Values and provide a framework for understanding which: aggregate structures provide the best enhancement (linear aggregates). The approach outlined here for stabilizing and characterizing deliberately aggregated plasmonic nanoparticles is general and provides a consistent means for testing the SERS substrate properties of nanoparticle colloids that are stabilized in the solid state.

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