4 Laser-Induced Synthesis and Processing of Nanoparticles …
159
23. L. Berthe, R. Fabbro, P. Peyer et al., Shock waves from a water-confined laser-generated plasma.
J. Appl. Phys. 82, 2826–2832 (1997)
24. T. Sakka, S. Yawanage, Y.H. Ogata et al., Laser ablation at solid–liquid interfaces: an approach
from optical emission spectra. J. Chem. Phys. 112, 8645–8653 (2000)
25. K. Saito, K. Takatani, T. Sakka et al., Observation of the light emitting region produced by
pulsed laser irradiation to a solid–liquid interface. Appl. Surf. Sci. 197, 56–60 (2002)
26. L. Berthe, A. Sollier, R. Fabbro et al., The generation of laser shock waves in a waterconfinement regime with 50 ns and 150 ns XeCl excimer laser pulses. J. Phys. D Appl. Phys.
33, 2142–2145 (2000)
27. D. Liu, C. Li, F. Zhou et al., Rapid synthesis of monodisperse au nanospheres through a laser
irradiation-induced shape conversion, self-assembly and their electromagnetic coupling. Sci.
Rep. 5, 7686 (2015) (9pp)
28. Y. Chen, Y. Tseng, C. Yeh, Laser-induced alloying Au–Pd and Ag–Pd colloidal mixtures: the
formation of dispersed Au/Pd and Ag/Pd nanoparticles. J. Mater. Chem. 12, 1419–1422 (2002)
29. M.A. Buccheri, D. D’Angelo, S. Scalese et al., Modification of graphene oxide by laser irradiation: a new route to enhance antibacterial activity. Nanotechnology 27, 245704 (2016)
(12pp)
30. X. Li, A. Pyatenko, Y. Shimizu et al., Fabrication of crystalline silicon spheres by selective
laser heating in liquid medium. Langmuir 27, 5076–5080 (2011)
31. A. Pyatenko, M. Yamaguchi, M. Suzuki, Mechanisms of size reduction of colloidal silver and
gold nanoparticles irradiated by Nd: YAG Laser. J. Phys. Chem. C 113, 9078–9085 (2009)
32. M. Fleischmann, P.J. Hendra, A.J. McQuillan, Raman spectra of pyridine adsorbed at a silver
electrode. Chem. Phys. Lett. 26, 163–166 (1974)
33. D.L. Jeanmaire, R.P. Van Duyne, Surface Raman electrochemistry. Part 1. Heterocyclic,
aromatic and aliphatic amines adsorbed on the anodised silver electrode. J. Electroanal. Chem.
84, 1–20 (1977)
34. M.G. Albrecht, J.A. Creighton, Anomalously intense Raman spectra of pyridine at a silver
electrode. J. Am. Chem. Soc. 99, 5215–5219 (1977)
35. R.P. Van Duyne, Laser excitation of Raman scattering from adsorbed molecules on electrode
surfaces. Chem. Biochem. Appl. Lasers 4, 101–185 (1979)
36. E.C. Le Ru, E. Blackie, M. Meyer et al., Surface enhanced Raman scattering enhancement
factors: a comprehensive study. J. Phys. Chem. C 111, 13794–13803 (2007)
37. S. Nie, S.R. Emory, Probing single molecules and single nanoparticles by surface-enhanced
Raman scattering. Science 275, 1102–1106 (1997)
38. G. Chen, Y. Wang, M. Yang et al., Measuring ensemble-averaged surface-enhanced Raman
scattering in the hotspots of colloidal nanoparticle dimers and trimers. Am. Chem. Soc. 132,
3644–3645 (2010)
39. J.A. Hebda, A.D. Miranker, The interplay of catalysis and toxicity by amyloid intermediates
on lipid bilayers: insights from type II diabetes. Biophysics 38, 125–152 (2009)
40. F.E. Cohen, S.B. Prusiner, Pathologic conformations of prion proteins. Ann. Rev. Biochem.
67, 793–819 (1998)
41. M. Pappalardo, M. Milardi, D. Grasso et al., Steered molecular dynamics studies reveal different
unfolding pathways of prions from mammalian and non-mammalian species. New J. Chem.
31, 901–905 (2007)
42. D. Milardi, M.F.M. Sciacca, M. Pappalardo et al., The role of aromatic side-chains in amyloid
growth and membrane interaction of the islet amyloid polypeptide fragment LANFLVH. Eur.
Biophys. J. 40, 1–12 (2011)
43. R. Soong, J.R. Brender, P.M. Macdonald et al., Association of highly compact type II diabetes
related islet amyloid polypeptide intermediate species at physiological temperature revealed
by diffusion NMR spectroscopy. J. Am. Chem. Soc. 131, 7079–7085 (2009)
44. S. Scalisi, M.F.M. Sciacca, G. Zhavnerko et al., Self-assembling pathway of HiApp fibrils
within lipid bilayers. Chem. BioChem. 11, 1856–1859 (2010)
45. P. Arosio, T.P.J. Knowles, S. Linse, On the lag phase in amyloid fibril formation. Phys. Chem.
Chem. Phys. 17, 7606–7618 (2015)
159
23. L. Berthe, R. Fabbro, P. Peyer et al., Shock waves from a water-confined laser-generated plasma.
J. Appl. Phys. 82, 2826–2832 (1997)
24. T. Sakka, S. Yawanage, Y.H. Ogata et al., Laser ablation at solid–liquid interfaces: an approach
from optical emission spectra. J. Chem. Phys. 112, 8645–8653 (2000)
25. K. Saito, K. Takatani, T. Sakka et al., Observation of the light emitting region produced by
pulsed laser irradiation to a solid–liquid interface. Appl. Surf. Sci. 197, 56–60 (2002)
26. L. Berthe, A. Sollier, R. Fabbro et al., The generation of laser shock waves in a waterconfinement regime with 50 ns and 150 ns XeCl excimer laser pulses. J. Phys. D Appl. Phys.
33, 2142–2145 (2000)
27. D. Liu, C. Li, F. Zhou et al., Rapid synthesis of monodisperse au nanospheres through a laser
irradiation-induced shape conversion, self-assembly and their electromagnetic coupling. Sci.
Rep. 5, 7686 (2015) (9pp)
28. Y. Chen, Y. Tseng, C. Yeh, Laser-induced alloying Au–Pd and Ag–Pd colloidal mixtures: the
formation of dispersed Au/Pd and Ag/Pd nanoparticles. J. Mater. Chem. 12, 1419–1422 (2002)
29. M.A. Buccheri, D. D’Angelo, S. Scalese et al., Modification of graphene oxide by laser irradiation: a new route to enhance antibacterial activity. Nanotechnology 27, 245704 (2016)
(12pp)
30. X. Li, A. Pyatenko, Y. Shimizu et al., Fabrication of crystalline silicon spheres by selective
laser heating in liquid medium. Langmuir 27, 5076–5080 (2011)
31. A. Pyatenko, M. Yamaguchi, M. Suzuki, Mechanisms of size reduction of colloidal silver and
gold nanoparticles irradiated by Nd: YAG Laser. J. Phys. Chem. C 113, 9078–9085 (2009)
32. M. Fleischmann, P.J. Hendra, A.J. McQuillan, Raman spectra of pyridine adsorbed at a silver
electrode. Chem. Phys. Lett. 26, 163–166 (1974)
33. D.L. Jeanmaire, R.P. Van Duyne, Surface Raman electrochemistry. Part 1. Heterocyclic,
aromatic and aliphatic amines adsorbed on the anodised silver electrode. J. Electroanal. Chem.
84, 1–20 (1977)
34. M.G. Albrecht, J.A. Creighton, Anomalously intense Raman spectra of pyridine at a silver
electrode. J. Am. Chem. Soc. 99, 5215–5219 (1977)
35. R.P. Van Duyne, Laser excitation of Raman scattering from adsorbed molecules on electrode
surfaces. Chem. Biochem. Appl. Lasers 4, 101–185 (1979)
36. E.C. Le Ru, E. Blackie, M. Meyer et al., Surface enhanced Raman scattering enhancement
factors: a comprehensive study. J. Phys. Chem. C 111, 13794–13803 (2007)
37. S. Nie, S.R. Emory, Probing single molecules and single nanoparticles by surface-enhanced
Raman scattering. Science 275, 1102–1106 (1997)
38. G. Chen, Y. Wang, M. Yang et al., Measuring ensemble-averaged surface-enhanced Raman
scattering in the hotspots of colloidal nanoparticle dimers and trimers. Am. Chem. Soc. 132,
3644–3645 (2010)
39. J.A. Hebda, A.D. Miranker, The interplay of catalysis and toxicity by amyloid intermediates
on lipid bilayers: insights from type II diabetes. Biophysics 38, 125–152 (2009)
40. F.E. Cohen, S.B. Prusiner, Pathologic conformations of prion proteins. Ann. Rev. Biochem.
67, 793–819 (1998)
41. M. Pappalardo, M. Milardi, D. Grasso et al., Steered molecular dynamics studies reveal different
unfolding pathways of prions from mammalian and non-mammalian species. New J. Chem.
31, 901–905 (2007)
42. D. Milardi, M.F.M. Sciacca, M. Pappalardo et al., The role of aromatic side-chains in amyloid
growth and membrane interaction of the islet amyloid polypeptide fragment LANFLVH. Eur.
Biophys. J. 40, 1–12 (2011)
43. R. Soong, J.R. Brender, P.M. Macdonald et al., Association of highly compact type II diabetes
related islet amyloid polypeptide intermediate species at physiological temperature revealed
by diffusion NMR spectroscopy. J. Am. Chem. Soc. 131, 7079–7085 (2009)
44. S. Scalisi, M.F.M. Sciacca, G. Zhavnerko et al., Self-assembling pathway of HiApp fibrils
within lipid bilayers. Chem. BioChem. 11, 1856–1859 (2010)
45. P. Arosio, T.P.J. Knowles, S. Linse, On the lag phase in amyloid fibril formation. Phys. Chem.
Chem. Phys. 17, 7606–7618 (2015)
