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54
50.
Lal S, grady NK, goodrich gP, halas NJ (2006) Profiling the near field of a plasmonic
nanoparticle with Raman-based molecular rulers. Nano Lett 6:2338–2343
51.
gellner m, Küstner B, Schlücker S (2009) optical properties and SERS efficiency of tunable gold/silver nanoshells. vibr Spectr 50:43–47
52.
Li JF, huang YF, ding Y, Yang ZL, Li SB, Zhou XS, Fan FR, Zhang W, Zhou ZY, Wu dY,
Ren B, Wang ZL, tian ZQ (2010) Shell-isolated nanoparticle-enhanced Raman spectroscopy. Nature 64(7287):392–395
53.
Anema JR, Li JF, Yang ZL, Ren B, tian ZQ (2011) Shell-isolated nanoparticle-enhanced Raman spectroscopy: expanding the versatility of surface-enhanced Raman scattering.
Annu Rev Anal Chem 4:129–150
54.
Kustner B, gellner m, Schutz m, Schoppler F, marx A, Strobel P, Adam P, Schmuck C,
Schlucker S (2009) SERS labels for red laser excitation: silica-encapsulated SAms on tunable gold/silver nanoshells. Angew Chem Int Ed 48:1950–1953
55.
mulvaney SP, musick m d, Keating Cd. Natan mJ (2003) glass-coated, analyte-tagged
nanoparticles: a new tagging system based on detection with surface-enhanced Raman scattering. Langmuir 19:4784–4790
56.
merican Z, Schiller tL, hawker CJ, Fredericks Pm, Blakey I (2007) Self-assembly and
encoding of polymer-stabilized gold nanoparticles with surface-enhanced Raman reporter
molecules. Langmuir 23:10539–10545
57.
moskovits m (2005) Surface-enhanced Raman spectroscopy: a brief retrospective. J Raman Spectrosc 36:485–496
58.
halas NJ, Lal S, Chang WS, Link S, Nordlander P (2011) Plasmons in strongly coupled
metallic nanostructures. Chem Rev 111:3913–3939
59.
Camden JP, dieringer JA, Wang Y, masiello dJ, marks Ld, Schatz gC, van duyne RP
(2008) Probing the structure of single-molecule surface-enhanced Raman scattering hot
spots. J Am Chem Soc 130:12616–12617
60.
Rycenga m, Camargo PhC, Li W, moran Ch, Xia Y (2010) understanding the SERS effects
of single silver nanoparticles and their dimers, one at a time. J Phys Chem Lett 1:696–703
61.
Wustholz KL, henry AI, mcmahon Jm, Freeman Rg, valley N, Piotti mE, Natan mJ, Schatz
gC, van duyne RP (2010) Structure-activity relationships in gold nanoparticle dimers and
trimers for surface-enhanced Raman spectroscopy. J Am Chem Soc 132:10903–10910
62.
Stockle Rm, Suh Yd, deckert v, Zenobi R (2000) Nanoscale chemical analysis by tip-enhanced Raman spectroscopy. Chem Phys Lett 318:131–136
63.
Pettinger B, Picardi g, Schuster R, Ertl g (2003) Surface-enhanced and Stm tip-enhanced
Raman spectroscopy of CN ions at gold surfaces. J Electroanal Chem 554:293–299
64.
Picardi g, Nguyen Q, Schreiber J, ossikovski R (2007) Comparative study of atomic
force mode and tunneling mode tip-enhanced Raman spectroscopy. Eur Phys J Appl Phys
40:197–201
65.
Zhang W, Yeo BS, Schmid t, Zenobi R (2007) Single-molecule tip-enhanced Raman spectroscopy with silver tips. J Phys Chem C 111:1733–1738
66.
Sonntag md, Klingsporn Jm, garibay LK, Roberts Jm, dieringer JA, Seideman t, Scheidt
KA, Jensen L, Schatz gC, van duyne RP (2012) Single-molecule tip-enhanced Raman
spectroscopy. J Phys Chem C 116:478–483
67.
Yeo BS, Stadler J, Schmid t, Zenobi R, Zhang W (2009) tip-enhanced Raman spectroscopy—its status, challenges and future directions. Chem Phys Lett 472:1–13
68.
Bailo E, deckert v (2008) tip-enhanced Raman scattering. Chem Soc Rev 37:921–930
69.
deckert-gaudig t, deckert v (2010) tip-enhanced Raman scattering (tERS) and highresolution bio nano-analysis—a comparison. Phys Chem Chem Phys 12:12040–12049
70.
Cotton tm (1988) the application of surface-enhanced Raman scattering to biochemical
systems. In: Clark RJh, hester RE (eds) Spectroscopy of surfaces. Advances in Spectroscopy, vol 16. Wiley, New York, pp 91–153
71.
Aliaga AE, osorio-Roman I, Leyton P, garrido C, Carcamo J, Caniulef C, Celis F, díaz
gF, Clavijo E, gomez-Jeria JS, Campos-vallette mm (2009) Surface-enhanced Raman
scattering study of L-tryptophan. J Raman Spectrosc 40:164–169
