2 Plasmonics for Enhanced Vibrational Signatures
123
43. W. Kiefer, D.A. Long, Non-Linear Raman Spectroscopy and its Chemical Application (Reider,
Dordrecht, 1982)
44. A. Volkmer, J.X. Cheng, X.S. Xie, Vibrational imaging with high sensitivity via epidetected
coherent anti-Stokes Raman scattering microscopy. Phys. Rev. Lett. 87, 3901 (2001)
45. E. Liang, A. Weippert, J. Funk, A. Materny, W. Kiefer, Experimental observation of surfaceenhanced coherent anti-Stokes Raman scattering. Chem. Phys. Lett. 227, 115–120 (1994)
46. I. Baltog, M. Baibarac, S. Lefrant, Coherent anti-Stokes Raman scattering on single-walled
carbon nanotubes and copper phthalocyanine thin films excited through surface plasmons. J.
Opt. Pure Appl. Opt. 7, 632–639 (2005)
47. I. Baltog, M. Baibarac, S. Lefrant, "Single-beam pumped" coherent anti-Stokes Raman scattering on carbon nanotubes thin films excited through surface plasmons. Physica E Low Dimensional Syst. Nanostruct. 40, 2380–2385 (2008)
48. C.J. Addison, S.O. Konorov, A.G. Brolo, M.W. Blades, R.F.B. Turner, Tuning gold nanoparticle self-assembly for optimum coherent anti-stokes Raman scattering and second harmonic
generation response. J. Phys. Chem. C 113, 3586–3592 (2009)
49. C. Steuwe, C.F. Kaminski, J.J. Baumberg, S. Mahajan, Surface enhanced coherent anti-stokes
Raman scattering on nanostructured gold surfaces. Nano Lett. 11, 5339–5343 (2011)
50. S. Schlucker, M. Salehi, G. Bergner, M. Schutz, P. Strobel, A. Marx, I. Petersen, B. Dietzek, J.
Popp, Immuno-surface-enhanced coherent anti-stokes Raman scattering microscopy: immunohistochemistry with target-specific metallic nanoprobes and nonlinear Raman microscopy.
Anal. Chem. 83, 7081–7085 (2011)
51. R.R. Frontiera, A.I. Henry, N.L. Gruenke, R.P. Van Duyne, Surface-enhanced femtosecond
stimulated Raman spectroscopy. J. Phys. Chem. Lett. 2, 1199–1203 (2011)
52. Y. Sonnefraud, A.L. Koh, D.W. McComb, S.A. Maier, Nanoplasmonics: engineering and observation of localized plasmon modes. Laser Photonics Rev. 6, 277–295 (2012)
53. M.I. Stockman, Nanoplasmonics: the physics behind the applications. Phys. Today 64, 39–44
(2011)
54. L. Novotny, From near-field optics to optical antennas. Phys. Today 64, 47–52 (2011)
55. S. Lal, N.K. Grady, J. Kundu, C.S. Levin, J.B. Lassiter, N.J. Halas, Tailoring plasmonic substrates for surface enhanced spectroscopies. Chem. Soc. Rev. 37, 898–911 (2008)
56. P.R. West, S. Ishii, G.V. Naik, N.K. Emani, V.M. Shalaev, A. Boltasseva, Searching for better
plasmonic materials. Laser Photonics Rev. 4, 795–808 (2010)
57. K. Kneipp, W. Yang, H. Kneipp, L.T. Perelman, I. Itzkan, R.R. Dasari, M.S. Feld, Single
molecule detection using surface-enhanced Raman scattering (SERS). Phys. Rev. Lett. 78,
1667–70 (1997)
58. K. Kneipp, H. Kneipp, J. Kneipp, Surface-enhanced Raman scattering in local optical fields of
silver and gold nanoaggregatess–from single-molecule Raman spectroscopy to ultrasensitive
probing in live cells. Acc. Chem. Res. 39, 443–450 (2006)
59. K. Kneipp, H. Kneipp, R. Manoharan, E.B. Hanlon, I. Itzkan, R.R. Dasari, M.S. Feld, Extremely
large enhancement factors in surface-enhanced Raman scattering for molecules on colloidal
gold clusters. Appl. Spectrosc. 52, 1493–1497 (1998)
60. K. Kneipp, H. Kneipp, V.B. Kartha, R. Manoharan, G. Deinum, I. Itzkan, R.R. Dasari, M.S.
Feld, Detection and identification of a single DNA base molecule using surface–enhanced
Raman scattering ( SERS ). Phys. Rev. E 57, R6281–R6284 (1998)
61. M.I. Stockman, V.M. Shalaev, M. Moskovits, R. Botet, T.F. George, Enhanced Raman scattering
by fractal clusters: scale-invariant theory. Phys. Rev. B 46, 2821–2830 (1992)
62. V.A. Podolskiy, V.M. Shalaev, Giant optical responses in microcavity-fractal composites. Laser
Phys. 11, 26–30 (2001)
63. K.R. Li, M.I. Stockman, D.J. Bergman, Self-similar chain of metal nanospheres as an efficient
nanolens. Phys. Rev. Lett. 91, 227–402 (2003)
64. J. Kneipp, X.T. Li, M. Sherwood, U. Panne, H. Kneipp, M.I. Stockman, K. Kneipp, Gold
nanolenses generated by laser ablation-efficient enhancing structure for surface enhanced
Raman scattering analytics and sensing. Anal. Chem. 80, 4247–4251 (2008)
123
43. W. Kiefer, D.A. Long, Non-Linear Raman Spectroscopy and its Chemical Application (Reider,
Dordrecht, 1982)
44. A. Volkmer, J.X. Cheng, X.S. Xie, Vibrational imaging with high sensitivity via epidetected
coherent anti-Stokes Raman scattering microscopy. Phys. Rev. Lett. 87, 3901 (2001)
45. E. Liang, A. Weippert, J. Funk, A. Materny, W. Kiefer, Experimental observation of surfaceenhanced coherent anti-Stokes Raman scattering. Chem. Phys. Lett. 227, 115–120 (1994)
46. I. Baltog, M. Baibarac, S. Lefrant, Coherent anti-Stokes Raman scattering on single-walled
carbon nanotubes and copper phthalocyanine thin films excited through surface plasmons. J.
Opt. Pure Appl. Opt. 7, 632–639 (2005)
47. I. Baltog, M. Baibarac, S. Lefrant, "Single-beam pumped" coherent anti-Stokes Raman scattering on carbon nanotubes thin films excited through surface plasmons. Physica E Low Dimensional Syst. Nanostruct. 40, 2380–2385 (2008)
48. C.J. Addison, S.O. Konorov, A.G. Brolo, M.W. Blades, R.F.B. Turner, Tuning gold nanoparticle self-assembly for optimum coherent anti-stokes Raman scattering and second harmonic
generation response. J. Phys. Chem. C 113, 3586–3592 (2009)
49. C. Steuwe, C.F. Kaminski, J.J. Baumberg, S. Mahajan, Surface enhanced coherent anti-stokes
Raman scattering on nanostructured gold surfaces. Nano Lett. 11, 5339–5343 (2011)
50. S. Schlucker, M. Salehi, G. Bergner, M. Schutz, P. Strobel, A. Marx, I. Petersen, B. Dietzek, J.
Popp, Immuno-surface-enhanced coherent anti-stokes Raman scattering microscopy: immunohistochemistry with target-specific metallic nanoprobes and nonlinear Raman microscopy.
Anal. Chem. 83, 7081–7085 (2011)
51. R.R. Frontiera, A.I. Henry, N.L. Gruenke, R.P. Van Duyne, Surface-enhanced femtosecond
stimulated Raman spectroscopy. J. Phys. Chem. Lett. 2, 1199–1203 (2011)
52. Y. Sonnefraud, A.L. Koh, D.W. McComb, S.A. Maier, Nanoplasmonics: engineering and observation of localized plasmon modes. Laser Photonics Rev. 6, 277–295 (2012)
53. M.I. Stockman, Nanoplasmonics: the physics behind the applications. Phys. Today 64, 39–44
(2011)
54. L. Novotny, From near-field optics to optical antennas. Phys. Today 64, 47–52 (2011)
55. S. Lal, N.K. Grady, J. Kundu, C.S. Levin, J.B. Lassiter, N.J. Halas, Tailoring plasmonic substrates for surface enhanced spectroscopies. Chem. Soc. Rev. 37, 898–911 (2008)
56. P.R. West, S. Ishii, G.V. Naik, N.K. Emani, V.M. Shalaev, A. Boltasseva, Searching for better
plasmonic materials. Laser Photonics Rev. 4, 795–808 (2010)
57. K. Kneipp, W. Yang, H. Kneipp, L.T. Perelman, I. Itzkan, R.R. Dasari, M.S. Feld, Single
molecule detection using surface-enhanced Raman scattering (SERS). Phys. Rev. Lett. 78,
1667–70 (1997)
58. K. Kneipp, H. Kneipp, J. Kneipp, Surface-enhanced Raman scattering in local optical fields of
silver and gold nanoaggregatess–from single-molecule Raman spectroscopy to ultrasensitive
probing in live cells. Acc. Chem. Res. 39, 443–450 (2006)
59. K. Kneipp, H. Kneipp, R. Manoharan, E.B. Hanlon, I. Itzkan, R.R. Dasari, M.S. Feld, Extremely
large enhancement factors in surface-enhanced Raman scattering for molecules on colloidal
gold clusters. Appl. Spectrosc. 52, 1493–1497 (1998)
60. K. Kneipp, H. Kneipp, V.B. Kartha, R. Manoharan, G. Deinum, I. Itzkan, R.R. Dasari, M.S.
Feld, Detection and identification of a single DNA base molecule using surface–enhanced
Raman scattering ( SERS ). Phys. Rev. E 57, R6281–R6284 (1998)
61. M.I. Stockman, V.M. Shalaev, M. Moskovits, R. Botet, T.F. George, Enhanced Raman scattering
by fractal clusters: scale-invariant theory. Phys. Rev. B 46, 2821–2830 (1992)
62. V.A. Podolskiy, V.M. Shalaev, Giant optical responses in microcavity-fractal composites. Laser
Phys. 11, 26–30 (2001)
63. K.R. Li, M.I. Stockman, D.J. Bergman, Self-similar chain of metal nanospheres as an efficient
nanolens. Phys. Rev. Lett. 91, 227–402 (2003)
64. J. Kneipp, X.T. Li, M. Sherwood, U. Panne, H. Kneipp, M.I. Stockman, K. Kneipp, Gold
nanolenses generated by laser ablation-efficient enhancing structure for surface enhanced
Raman scattering analytics and sensing. Anal. Chem. 80, 4247–4251 (2008)
