3 Surface-enhanced Raman Scattering ...
53
28.
Cialla d, huebner u, Schneidewind h, moeller R, Popp J (2008) Probing innovative microfabricated substrates for their reproducible SERS activity. ChemPhysChem 9(5):758–762
29.
Porter Jr LA, Choi hC, Schmeltzer Jm, Ribbe AE, Elliott LCC, Buriak Jm (2002) Electroless nanoparticle film deposition compatible with photolithography, microcontact printing,
and dip-pen nanolithography patterning technologies. NanoLetters 2(12):1369–1372
30.
dieringer JA, mcFarland Ad, Shah NC, Stuart dA, Whitney Av, Yonzon CR, Young mA,
Zhang XY, van duyne RP (2006) Surface enhanced Raman spectroscopy: new materials,
concepts, characterization tools, and applications. Faraday discussions 132:9–26
31.
Baia L, Baia m, Popp J, Astilean S (2006) gold films deposited over regular arrays of polystyrene nanospheres as highly effective SERS substrates from visible to NIR. J Phys Chem
B 110(47):23982–23986
32.
haynes CL, van duyne RP (2003) Plasmon-sampled surface-enhanced Raman excitation
spectroscopy. J Phys Chem B 107:7426–7433
33.
Cialla d, märz A, Böhme R, theil F, Weber K, Schmitt m, Popp J (2012) Surface-enhanced
Raman spectroscopy (SERS): progress and trends. Anal Bioanal Chem 403:27–54
34.
mohapatra S, Siddhanta S, Kumar dR, Narayana C, maji tK (2010) Facile and green synthesis of SERS active and ferromagnetic silver nanorods. Eur J Inorg Chem 31:4969–4974
35.
Smitha SL, gopchandranKg, Ravindran tR, Prasad vS (2011) gold nanorods with finely tunable longitudinal surface plasmon resonance as SERS substrates. Nanotechnology
22:265705
36.
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
37.
Sun Y, Xia Y (2002) Shape-controlled synthesis of gold and silver nanoparticles. Science
298:2176–2179
38.
Rycenga m, Kim mh, Camargo PhC, Cobley C, Li Z-Y, Xia Y (2009) Surface-enhanced
Raman scattering: comparison of three different molecules on single-crystal nanocubes and
nanospheres of silver. J Phys Chem A 113:3932–3939
39.
Eguchi m, mitsui d, Wu h-L, Sato R, teranishi t (2012) Simple reductant concentrationdependent shape control of polyhedral gold nanoparticles and their plasmonic properties.
Langmuir 28(24):9021–9026
40.
Khoury Cg, vo-dinh t (2008) gold nanostars for surface-enhanced Raman scattering:
synthesis, characterization and optimization. J PhysChem C 112(48):18849–18859
41.
Esenturk EN, Walker ARh (2009) Surface-enhanced Raman scattering spectroscopy via
gold nanostars. J Raman Spectrosc 40(1):86–91
42.
Rodriguez-Lorenzo L, Alvarez-Puebla RA, garcia J, de Abajo F, Liz-marzan Lm (2010)
Surface enhanced Raman scattering using star-shaped gold colloidal nanoparticles. J Phys
Chem C 114(16):7336–7340
43.
Kim Jh, Kang t, Yoo Sm, Lee SY, Kim B, Choi YK (2009) A well-ordered flower-like gold
nanostructure for integrated sensors via surface-enhanced Raman scattering. Nanotechnology 20(23):235302
44.
gellner m, Kustner B, Schlucker S (2009) optical properties and SERS efficiency of tunable gold/silver nanoshells. vib Spectrosc 50:43–47
45.
oldenberg SJ, Averitt Rd, Westcott SL, halas NJ (1998) Nanoengineering of optical Resonances. Chem Phys Lett 288:243–247
46.
Alvarez-Puebla RA, Ross dJ, Nazri gA, Aroca RF (2005) Surface-enhanced Raman scattering on nanoshells with tunable surface plasmon resonance. Langmuir 21:10504–10508
47.
talley CE, Jackson JB, oubre C, grady NK, hollars CW, Lane Sm, huser tR (2005) Surface-enhanced Raman scattering from individual Au nanoparticles and nanoparticle dimer
substrates. Nano Lett 5:1569–1574
48.
Jackson JB, halas NJ (2004) Surface-enhanced Raman scattering on tunable plasmonic
nanoparticle substrates. Proc Natl Acad Sci uSA 101:17930–17935
49.
ochsenkuhn mA, Jess PRt, Stoquert h, dholakia K, Campbell CJ, (2009) Nanoshells for
surface-enhanced Raman spectroscopy in eukaryotic cells: cellular response and sensor
development. ACS Nano 3(11):3613–3621
53
28.
Cialla d, huebner u, Schneidewind h, moeller R, Popp J (2008) Probing innovative microfabricated substrates for their reproducible SERS activity. ChemPhysChem 9(5):758–762
29.
Porter Jr LA, Choi hC, Schmeltzer Jm, Ribbe AE, Elliott LCC, Buriak Jm (2002) Electroless nanoparticle film deposition compatible with photolithography, microcontact printing,
and dip-pen nanolithography patterning technologies. NanoLetters 2(12):1369–1372
30.
dieringer JA, mcFarland Ad, Shah NC, Stuart dA, Whitney Av, Yonzon CR, Young mA,
Zhang XY, van duyne RP (2006) Surface enhanced Raman spectroscopy: new materials,
concepts, characterization tools, and applications. Faraday discussions 132:9–26
31.
Baia L, Baia m, Popp J, Astilean S (2006) gold films deposited over regular arrays of polystyrene nanospheres as highly effective SERS substrates from visible to NIR. J Phys Chem
B 110(47):23982–23986
32.
haynes CL, van duyne RP (2003) Plasmon-sampled surface-enhanced Raman excitation
spectroscopy. J Phys Chem B 107:7426–7433
33.
Cialla d, märz A, Böhme R, theil F, Weber K, Schmitt m, Popp J (2012) Surface-enhanced
Raman spectroscopy (SERS): progress and trends. Anal Bioanal Chem 403:27–54
34.
mohapatra S, Siddhanta S, Kumar dR, Narayana C, maji tK (2010) Facile and green synthesis of SERS active and ferromagnetic silver nanorods. Eur J Inorg Chem 31:4969–4974
35.
Smitha SL, gopchandranKg, Ravindran tR, Prasad vS (2011) gold nanorods with finely tunable longitudinal surface plasmon resonance as SERS substrates. Nanotechnology
22:265705
36.
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
37.
Sun Y, Xia Y (2002) Shape-controlled synthesis of gold and silver nanoparticles. Science
298:2176–2179
38.
Rycenga m, Kim mh, Camargo PhC, Cobley C, Li Z-Y, Xia Y (2009) Surface-enhanced
Raman scattering: comparison of three different molecules on single-crystal nanocubes and
nanospheres of silver. J Phys Chem A 113:3932–3939
39.
Eguchi m, mitsui d, Wu h-L, Sato R, teranishi t (2012) Simple reductant concentrationdependent shape control of polyhedral gold nanoparticles and their plasmonic properties.
Langmuir 28(24):9021–9026
40.
Khoury Cg, vo-dinh t (2008) gold nanostars for surface-enhanced Raman scattering:
synthesis, characterization and optimization. J PhysChem C 112(48):18849–18859
41.
Esenturk EN, Walker ARh (2009) Surface-enhanced Raman scattering spectroscopy via
gold nanostars. J Raman Spectrosc 40(1):86–91
42.
Rodriguez-Lorenzo L, Alvarez-Puebla RA, garcia J, de Abajo F, Liz-marzan Lm (2010)
Surface enhanced Raman scattering using star-shaped gold colloidal nanoparticles. J Phys
Chem C 114(16):7336–7340
43.
Kim Jh, Kang t, Yoo Sm, Lee SY, Kim B, Choi YK (2009) A well-ordered flower-like gold
nanostructure for integrated sensors via surface-enhanced Raman scattering. Nanotechnology 20(23):235302
44.
gellner m, Kustner B, Schlucker S (2009) optical properties and SERS efficiency of tunable gold/silver nanoshells. vib Spectrosc 50:43–47
45.
oldenberg SJ, Averitt Rd, Westcott SL, halas NJ (1998) Nanoengineering of optical Resonances. Chem Phys Lett 288:243–247
46.
Alvarez-Puebla RA, Ross dJ, Nazri gA, Aroca RF (2005) Surface-enhanced Raman scattering on nanoshells with tunable surface plasmon resonance. Langmuir 21:10504–10508
47.
talley CE, Jackson JB, oubre C, grady NK, hollars CW, Lane Sm, huser tR (2005) Surface-enhanced Raman scattering from individual Au nanoparticles and nanoparticle dimer
substrates. Nano Lett 5:1569–1574
48.
Jackson JB, halas NJ (2004) Surface-enhanced Raman scattering on tunable plasmonic
nanoparticle substrates. Proc Natl Acad Sci uSA 101:17930–17935
49.
ochsenkuhn mA, Jess PRt, Stoquert h, dholakia K, Campbell CJ, (2009) Nanoshells for
surface-enhanced Raman spectroscopy in eukaryotic cells: cellular response and sensor
development. ACS Nano 3(11):3613–3621
