1 Introduction to Laser Micro-to-Nano Manufacturing
65
42. F.G. Shi, Size dependent thermal vibrations and melting in nanocrystals. J. Mater. Res. 9,
1307–1314 (1994)
43. Q. Jiang, S.H. Zhang, J.C. Li, Grain size-dependent diffusion activation energy in nanomaterials. Solid State Commun. 130, 581–584 (2004)
44. P. Peng, A. Hu, A.P. Gerlich, G. Zou, L. Liu, Y.N. Zhou, Joining of silver nanomaterials at
low temperatures: processes, properties, and applications. ACS Appl. Mater. Interfaces. 7,
12597–12618 (2015)
45. A. Hu, J.Y. Guo, H. Alarifi, G. Patane, Y. Zhou, G. Compagnini, C.X. Xu, Low temperature
sintering of Ag nanoparticles for flexible electronics packaging. Appl. Phys. Lett. 97, 153117
(2010)
46. D. Bridges, C. Rouleau, Z. Gosser, C. Smith, Z. Zhang, K. Hong, J. Cheng, Y. Bar-Cohen,
A. Hu, Self-powered fast brazing of Ti–6Al–4 V using Ni/Al reactive multilayer films. Appl.
Sci. 8, 985 (2018)
47. Y. Lu, J.Y. Huang, C. Wang, S. Sun, J. Lou, Cold welding of ultrathin gold nanowires. Nat.
Nanotechnol. 5, 218–224 (2010)
48. P. Peng, L. Liu, A.P. Gerlich, A. Hu, Y.N. Zhou, Self-oriented nanojoining of silver nanowires
via surface selective activation. Particle Particle Syst. Character. 30, 420–426 (2013)
49. K. Dick, T. Dhanasekaran, Z. Zhang, D. Meisel, Size-dependent melting of silica-encapsulated
gold nanoparticles. J. Am. Chem. Soc. 124, 2312–2317 (2002)
50. A. Ghosh, B. Corves. Introduction to Micromechanisms and Microactuators (Springer, 2015)
51. K.E. Drexier, in Nanosystems (Wiley, 1992, Chap. 2)
52. K. Liu, S. Sun, A. Majumdar, V.J. Sorger, Fundamental scaling laws in nanophotonics. Sci.
Rep. 6, 37419 (2016)
53. X.-Y. Zhang, A. Hu, T. Zhang, X.-J. Xue, J.Z. Wen, W.W. Duley, Subwavelength plasmonic
waveguides based on ZnO nanowires and nanotubes: a theoretical study of thermo-optical
properties. Appl. Phys. Lett. 96, 043109 (2010)
54. X. Zhang, T. Zhang, A. Hu, Y. Song, W.W. Duley, Controllable plasmonic antennas with ultra
narrow bandwidth based on silver nano-flags. Appl. Phys. Lett. 101, 153118 (2012)
55. X.-Y. Zhang, A. Hu, J.Z. Wen, T. Zhang, X.-J. Xue, Y. Zhou, W.W. Duley, Numerical analysis
of deep sub-wavelength integrated plasmonic devices based on semiconductor-insulator-metal
strip waveguides. Opt. Express 18, 18945–18959 (2010)
56. H. Raether, in Surface Plasmons on Smooth and Rough Surfaces and on Gratings (Springer
1988), pp. 4–39
57. Z. Fang, X. Zhu, Plasmonics in Nanostructures. Adv. Mater. 25, 3840–3856 (2013)
58. Y. Fang, N.-H. Seong, D.D. Dlott, Measurement of the distribution of site enhancements in
surface-enhanced raman scattering. Science 321, 388 (2008)
59. P. Peng, H. Huang, A. Hu, A.P. Gerlich, Y.N. Zhou, Functionalization of silver nanowire
surfaces with copper oxide for surface-enhanced Raman spectroscopic bio-sensing. J. Mater.
Chem. 22, 15495–15499 (2012)
60. W. Hou, S.B. Cronin, A review of surface plasmon resonance-enhanced photocatalysis. Adv.
Funct. Mater. 23, 1612–1619 (2013)
61. G. Baffou, R. Quidant, C. Girard, Heat generation in plasmonic nanostructures: influence of
morphology. Appl. Phys. Lett. 94, 153109 (2009)
62. C. Ma, J. Yan, Y. Huang, C. Wang, G. Yang, The optical duality of tellurium nanoparticles
for broadband solar energy harvesting and efficient photothermal conversion. Sci. Adv. 4,
eaas9894 (2018)
63. C. Clavero, Plasmon-induced hot-electron generation at nanoparticle/metal-oxide interfaces
for photovoltaic and photocatalytic devices. Nat. Photon. 8, 95–103 (2014)
64. T. Neumann, M.L. Johansson, D. Kambhampati, W. Knoll, Surface-plasmon fluorescence
spectroscopy. Adv. Funct. Mat. 12, 575–586 (2002)
65. G.I. Stegeman, J.J. Burke, D.G. Hall, Nonlinear optics of long range surface plasmons. Appl.
Phys. Lett. 41, 906–908 (1982)
66. P. Drude, Zur Elektronentheorie der Metalle. Ann. Phys. 306, 566–613 (1900)
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