Coupling discrete metal nanoparticles to photonic crystal surface resonant modes and application to Raman spectroscopy
Optics Express, Vol. 18, Issue 5, pp. 4300-4309 (2010)
http://dx.doi.org/10.1364/OE.18.004300
Acrobat PDF (650 KB)
Abstract
Coupling a tightly packed layer of discrete metal nanoparticles to the resonant mode of a photonic crystal surface has been demonstrated as a means for obtaining additional electromagnetic gain for surface-enhanced Raman spectroscopy (SERS), in which electric fields of the photonic crystal can couple to plasmon resonances of the metal nanoparticles. Because metal nanoparticles introduce absorption that quench the photonic crystal resonance, a balance must be achieved between locating the metal nanoparticles too close to the surface while still positioning them within the enhanced evanescent field to maximize coupling to surface plasmons. In this work, we describe a parametric study into the design of a photonic crystal-SERS substrate, comprised of a replica molded photonic crystal slab as the dielectric optical resonator, a SiO2 “post” layer spacer, and an Ag “cap” metal nanostructure. Using the Raman signal for trans-1,2-bis(4pyridyl)ethane, the coupling efficiency was maximized for a SiO2 “post” layer thickness of 50 nm and a Ag “cap” height of ~20 nm, providing an additional enhancement factor of 21.4.
© 2010 OSA
1. Introduction
J. M. Reyes-Goddard MSc, H Barr, and N Stone, “Photodiagnosis using Raman and surface enhanced Raman scattering of bodily fluids,” Photodiagn. Photodyn. Ther. 2(3), 223–233 (2005). [CrossRef]
J. A. Dieringer, A. D. McFarland, N. C. Shah, D. A. Stuart, A. V. Whitney, C. R. Yonzon, M. A. Young, X. Zhang, and R. P. Van Duyne, “Surface enhanced Raman spectroscopy: new materials, concepts, characterization tools, and applications,” Faraday Discuss. 132, 9–26 (2006). [CrossRef] [PubMed]
K. D. Alexander, M. J. Hampton, S. Zhang, A. Dhawan, H. Xuc, and R. Lopeza, “A high-throughput method for controlled hot-spot fabrication in SERS-active gold nanoparticle dimer arrays,” J. Raman Spectrosc. 40(12), 2171–2175 (2009). [CrossRef]
I. M. White, J. Gohring, and X. Fan, “SERS-based detection in an optofluidic ring resonator platform,” Opt. Express 15(25), 17433–17442 (2007). [CrossRef] [PubMed]
S. Kim, W. Zhang, and B. T. Cunningham, “Photonic crystals with SiO2-Ag “post-cap” nanostructure coatings for surface enhanced Raman spectroscopy,” Appl. Phys. Lett. 93(14), 143112 (2008). [CrossRef]
2. Fabrication of PC-SERS substrates
W. Zhang, N. Ganesh, I. D. Block, and B. T. Cunningham, “High sensitivity photonic crystal biosensor incorporating nanorod structures for enhanced surface area,” Sens, Actuator B-Chem. 131(1), 279–284 (2008). [CrossRef]
W. Zhang and B. T. Cunningham, “Fluorescence enhancement by a photonic crystal with a nanorod-structured high index layer,” Appl. Phys. Lett. 93(13), 133115 (2008). [CrossRef]
S. M. Kim, H. Kim, and S. Kang, “Development of an ultraviolet imprinting process for integrating a microlens array onto an image sensor,” Opt. Lett. 31(18), 2710–2712 (2006). [CrossRef] [PubMed]
W. Zhang, N. Ganesh, P. C. Mathias, and B. T. Cunningham, “Enhanced fluorescence on a photonic crystal surface incorporating nanorod structures,” Small 4(12), 2199–2203 (2008). [CrossRef] [PubMed]
W. Zhang, N. Ganesh, I. D. Block, and B. T. Cunningham, “High sensitivity photonic crystal biosensor incorporating nanorod structures for enhanced surface area,” Sens, Actuator B-Chem. 131(1), 279–284 (2008). [CrossRef]
W. Zhang and B. T. Cunningham, “Fluorescence enhancement by a photonic crystal with a nanorod-structured high index layer,” Appl. Phys. Lett. 93(13), 133115 (2008). [CrossRef]
3. Far-field characteristics of PC-SERS substrates
4. Simulation and experimental methods to examine coupling efficiency
W. Zhang and B. T. Cunningham, “Fluorescence enhancement by a photonic crystal with a nanorod-structured high index layer,” Appl. Phys. Lett. 93(13), 133115 (2008). [CrossRef]
S. M. Kim, H. Kim, and S. Kang, “Development of an ultraviolet imprinting process for integrating a microlens array onto an image sensor,” Opt. Lett. 31(18), 2710–2712 (2006). [CrossRef] [PubMed]
C. Oubre and P. Nordlander, “Finite-difference time-domain studies of the optical properties of nanoshell dimers,” J. Phys. Chem. B 109(20), 10042–10051 (2005). [CrossRef]
S. Kim, W. Zhang, and B. T. Cunningham, “Photonic crystals with SiO2-Ag “post-cap” nanostructure coatings for surface enhanced Raman spectroscopy,” Appl. Phys. Lett. 93(14), 143112 (2008). [CrossRef]
5. Effects of SiO2 –Ag “post-cap” thicknesses on the coupled EM fields and SERS EF
S. B. Chaney, S. Shanmukh, R. A. Dluhy, and Y.-P. Zhao, “Aligned silver nanorod arrays produce high sensitivity surface-enhanced Raman spectroscopy substrates,” Appl. Phys. Lett. 87(3), 031908 (2005). [CrossRef]
6. Discussion
J. A. Dieringer, A. D. McFarland, N. C. Shah, D. A. Stuart, A. V. Whitney, C. R. Yonzon, M. A. Young, X. Zhang, and R. P. Van Duyne, “Surface enhanced Raman spectroscopy: new materials, concepts, characterization tools, and applications,” Faraday Discuss. 132, 9–26 (2006). [CrossRef] [PubMed]
K. D. Alexander, M. J. Hampton, S. Zhang, A. Dhawan, H. Xuc, and R. Lopeza, “A high-throughput method for controlled hot-spot fabrication in SERS-active gold nanoparticle dimer arrays,” J. Raman Spectrosc. 40(12), 2171–2175 (2009). [CrossRef]
C. Lin, L. Jiang, Y. Chai, H. Xiao, S. Chen, and H. Tsai, “One-step fabrication of nanostructures by femtosecond laser for surface-enhanced Raman scattering,” Opt. Express 17(24), 21581–21589 (2009). [CrossRef] [PubMed]
N. M. B. Perney, J. J. Baumberg, M. E. Zoorob, M. D. B. Charlton, S. Mahnkopf, and C. M. Netti, “Tuning localized plasmons in nanostructured substrates for surface-enhanced Raman scattering,” Opt. Express 14(2), 847–857 (2006). [CrossRef] [PubMed]
A. Gopinath, S. V. Boriskina, W. R. Premasiri, L. Ziegler, B. M. Reinhard, and L. Dal Negro, “Plasmonic nanogalaxies: multiscale aperiodic arrays for surface-enhanced Raman sensing,” Nano Lett. 9(11), 3922–3929 (2009). [CrossRef] [PubMed]
K. D. Alexander, M. J. Hampton, S. Zhang, A. Dhawan, H. Xuc, and R. Lopeza, “A high-throughput method for controlled hot-spot fabrication in SERS-active gold nanoparticle dimer arrays,” J. Raman Spectrosc. 40(12), 2171–2175 (2009). [CrossRef]
7. Conclusions
Acknowledgements
References and links
J. M. Reyes-Goddard MSc, H Barr, and N Stone, “Photodiagnosis using Raman and surface enhanced Raman scattering of bodily fluids,” Photodiagn. Photodyn. Ther. 2(3), 223–233 (2005). [CrossRef] | |
I. Pochrandc, Springer Tracts in Modern Physics (Springer-Verlag, 1984). | |
D. A. Weitz, M. Moskovits, and J. A. Creighton, “Surface-enhanced Raman spectroscopy with emphasis on liquid-solid interfaces,” in Chemical Structure at Interfaces:New Laser and Optical Techniques , R. B. Hall and A.B. Ellis, eds. (VCH, 1986), pp. 197–243. | |
J. A. Dieringer, A. D. McFarland, N. C. Shah, D. A. Stuart, A. V. Whitney, C. R. Yonzon, M. A. Young, X. Zhang, and R. P. Van Duyne, “Surface enhanced Raman spectroscopy: new materials, concepts, characterization tools, and applications,” Faraday Discuss. 132, 9–26 (2006). [CrossRef] [PubMed] | |
A. Gopinath, S. V. Boriskina, W. R. Premasiri, L. Ziegler, B. M. Reinhard, and L. Dal Negro, “Plasmonic nanogalaxies: multiscale aperiodic arrays for surface-enhanced Raman sensing,” Nano Lett. 9(11), 3922–3929 (2009). [CrossRef] [PubMed] | |
C. Lin, L. Jiang, Y. Chai, H. Xiao, S. Chen, and H. Tsai, “One-step fabrication of nanostructures by femtosecond laser for surface-enhanced Raman scattering,” Opt. Express 17(24), 21581–21589 (2009). [CrossRef] [PubMed] | |
K. D. Alexander, M. J. Hampton, S. Zhang, A. Dhawan, H. Xuc, and R. Lopeza, “A high-throughput method for controlled hot-spot fabrication in SERS-active gold nanoparticle dimer arrays,” J. Raman Spectrosc. 40(12), 2171–2175 (2009). [CrossRef] | |
I. M. White, J. Gohring, and X. Fan, “SERS-based detection in an optofluidic ring resonator platform,” Opt. Express 15(25), 17433–17442 (2007). [CrossRef] [PubMed] | |
S. Kim, W. Zhang, and B. T. Cunningham, “Photonic crystals with SiO2-Ag “post-cap” nanostructure coatings for surface enhanced Raman spectroscopy,” Appl. Phys. Lett. 93(14), 143112 (2008). [CrossRef] | |
W. Zhang, N. Ganesh, I. D. Block, and B. T. Cunningham, “High sensitivity photonic crystal biosensor incorporating nanorod structures for enhanced surface area,” Sens, Actuator B-Chem. 131(1), 279–284 (2008). [CrossRef] | |
W. Zhang, N. Ganesh, P. C. Mathias, and B. T. Cunningham, “Enhanced fluorescence on a photonic crystal surface incorporating nanorod structures,” Small 4(12), 2199–2203 (2008). [CrossRef] [PubMed] | |
W. Zhang and B. T. Cunningham, “Fluorescence enhancement by a photonic crystal with a nanorod-structured high index layer,” Appl. Phys. Lett. 93(13), 133115 (2008). [CrossRef] | |
S. M. Kim, H. Kim, and S. Kang, “Development of an ultraviolet imprinting process for integrating a microlens array onto an image sensor,” Opt. Lett. 31(18), 2710–2712 (2006). [CrossRef] [PubMed] | |
C. Oubre and P. Nordlander, “Finite-difference time-domain studies of the optical properties of nanoshell dimers,” J. Phys. Chem. B 109(20), 10042–10051 (2005). [CrossRef] | |
S. B. Chaney, S. Shanmukh, R. A. Dluhy, and Y.-P. Zhao, “Aligned silver nanorod arrays produce high sensitivity surface-enhanced Raman spectroscopy substrates,” Appl. Phys. Lett. 87(3), 031908 (2005). [CrossRef] | |
N. M. B. Perney, J. J. Baumberg, M. E. Zoorob, M. D. B. Charlton, S. Mahnkopf, and C. M. Netti, “Tuning localized plasmons in nanostructured substrates for surface-enhanced Raman scattering,” Opt. Express 14(2), 847–857 (2006). [CrossRef] [PubMed] | |
OCIS Codes
(240.6680) Optics at surfaces : Surface plasmons
(220.4241) Optical design and fabrication : Nanostructure fabrication
(230.4555) Optical devices : Coupled resonators
(280.4788) Remote sensing and sensors : Optical sensing and sensors
(050.5298) Diffraction and gratings : Photonic crystals
(240.6695) Optics at surfaces : Surface-enhanced Raman scattering
ToC Category:
Photonic Crystals
History
Original Manuscript: January 8, 2010
Revised Manuscript: February 4, 2010
Manuscript Accepted: February 11, 2010
Published: February 17, 2010
Virtual Issues
Vol. 5, Iss. 6 Virtual Journal for Biomedical Optics
Citation
Seok-min Kim, Wei Zhang, and Brian T. Cunningham, "Coupling discrete metal nanoparticles to photonic crystal surface resonant modes and application to Raman spectroscopy," Opt. Express 18, 4300-4309 (2010)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-18-5-4300
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References
- J. M. Reyes-Goddard MSc, H Barr, and N Stone, “Photodiagnosis using Raman and surface enhanced Raman scattering of bodily fluids,” Photodiagn. Photodyn. Ther. 2(3), 223–233 (2005). [CrossRef]
- I. Pochrandc, Springer Tracts in Modern Physics (Springer-Verlag, 1984).
- D. A. Weitz, M. Moskovits, and J. A. Creighton, “Surface-enhanced Raman spectroscopy with emphasis on liquid-solid interfaces,” in Chemical Structure at Interfaces:New Laser and Optical Techniques, R. B. Hall and A.B. Ellis, eds. (VCH, 1986), pp. 197–243.
- J. A. Dieringer, A. D. McFarland, N. C. Shah, D. A. Stuart, A. V. Whitney, C. R. Yonzon, M. A. Young, X. Zhang, and R. P. Van Duyne, “Surface enhanced Raman spectroscopy: new materials, concepts, characterization tools, and applications,” Faraday Discuss. 132, 9–26 (2006). [CrossRef] [PubMed]
- A. Gopinath, S. V. Boriskina, W. R. Premasiri, L. Ziegler, B. M. Reinhard, and L. Dal Negro, “Plasmonic nanogalaxies: multiscale aperiodic arrays for surface-enhanced Raman sensing,” Nano Lett. 9(11), 3922–3929 (2009). [CrossRef] [PubMed]
- C. Lin, L. Jiang, Y. Chai, H. Xiao, S. Chen, and H. Tsai, “One-step fabrication of nanostructures by femtosecond laser for surface-enhanced Raman scattering,” Opt. Express 17(24), 21581–21589 (2009). [CrossRef] [PubMed]
- K. D. Alexander, M. J. Hampton, S. Zhang, A. Dhawan, H. Xuc, and R. Lopeza, “A high-throughput method for controlled hot-spot fabrication in SERS-active gold nanoparticle dimer arrays,” J. Raman Spectrosc. 40(12), 2171–2175 (2009). [CrossRef]
- I. M. White, J. Gohring, and X. Fan, “SERS-based detection in an optofluidic ring resonator platform,” Opt. Express 15(25), 17433–17442 (2007). [CrossRef] [PubMed]
- S. Kim, W. Zhang, and B. T. Cunningham, “Photonic crystals with SiO2-Ag “post-cap” nanostructure coatings for surface enhanced Raman spectroscopy,” Appl. Phys. Lett. 93(14), 143112 (2008). [CrossRef]
- W. Zhang, N. Ganesh, I. D. Block, and B. T. Cunningham, “High sensitivity photonic crystal biosensor incorporating nanorod structures for enhanced surface area,” Sens, Actuator B-Chem. 131(1), 279–284 (2008). [CrossRef]
- W. Zhang, N. Ganesh, P. C. Mathias, and B. T. Cunningham, “Enhanced fluorescence on a photonic crystal surface incorporating nanorod structures,” Small 4(12), 2199–2203 (2008). [CrossRef] [PubMed]
- W. Zhang and B. T. Cunningham, “Fluorescence enhancement by a photonic crystal with a nanorod-structured high index layer,” Appl. Phys. Lett. 93(13), 133115 (2008). [CrossRef]
- S. M. Kim, H. Kim, and S. Kang, “Development of an ultraviolet imprinting process for integrating a microlens array onto an image sensor,” Opt. Lett. 31(18), 2710–2712 (2006). [CrossRef] [PubMed]
- C. Oubre and P. Nordlander, “Finite-difference time-domain studies of the optical properties of nanoshell dimers,” J. Phys. Chem. B 109(20), 10042–10051 (2005). [CrossRef]
- S. B. Chaney, S. Shanmukh, R. A. Dluhy, and Y.-P. Zhao, “Aligned silver nanorod arrays produce high sensitivity surface-enhanced Raman spectroscopy substrates,” Appl. Phys. Lett. 87(3), 031908 (2005). [CrossRef]
- N. M. B. Perney, J. J. Baumberg, M. E. Zoorob, M. D. B. Charlton, S. Mahnkopf, and C. M. Netti, “Tuning localized plasmons in nanostructured substrates for surface-enhanced Raman scattering,” Opt. Express 14(2), 847–857 (2006). [CrossRef] [PubMed]
- http://www.d3diagnostics.com/en/klarite-substrates –10452
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