1 Introduction to Laser Micro-to-Nano Manufacturing
69
138. M. Maillard, P. Huang, L. Brus, Silver nanodisk growth by surface plasmon enhanced
photoreduction of adsorbed [Ag +]. Nano Lett. 3, 1611–1615 (2003)
139. S. Bai, W. Zhou, Y. Lin, Y. Zhao, T. Chen, A. Hu, W.W. Duley, Ultraviolet pulsed laser
interference lithography and application of periodic structured Ag-nanoparticle films for
surface-enhanced Raman spectroscopy. J. Nanopart. Res. 16, 2470 (2014)
140. Y. Nakata, Y. Matsuba, K. Murakawa, N. Miyanaga, Change of interference pattern using
fundamental and second-harmonic wavelengths by phase shift of a beam. Appl. Phys. A 117,
207–210 (2014)
141. S. Bai, D. Serien, A. Hu, K. Sugioka, 3D microfluidic surface-enhanced Raman spectroscopy
(SERS) chips fabricated by all-femtosecond-laser-processing for real-time sensing of toxic
substances. Adv. Funct. Mater. 28, 1706262 (2018)
142. S.M. Yalisove, K. Sugioka, C.P. Grigoropoulos, Advances and opportunities of ultrafast laser
synthesis and processing. MRS Bull. 41, 955–959 (2016)
143. A. Hu, J. Sanderson, A.A. Zaidi, C. Wang, T. Zhang, Y. Zhou, W.W. Duley, Direct synthesis
of polyyne molecules in acetone by dissociation using femtosecond laser irradiation. Carbon
46, 1823–1825 (2008)
144. L. Rapp, B. Haberl, C.J. Pickard, J.E. Bradby, E.G. Gamaly, J.S. Williams, A.V. Rode,
Experimental evidence of new tetragonal polymorphs of silicon formed through ultrafast
laser-induced confined microexplosion. Nat. Commun. 6, 7555 (2015)
145. A.A. Zaidi, A. Hu, D.E. Henneke, W.W. Duley, Femtosecond laser irradiation of liquid
alkanes: mechanism of polyyne formation. Chem. Phys. Lett. 723, 151–154 (2019)
146. A.A. Zaidi, A. Hu, M.J. Wesolowski, X. Fu, J.H. Sanderson, Y. Zhou, W.W. Duley, Time
of flight mass spectrometry of polyyne formation in the irradiation of liquid alkanes with
femtosecond laser pulses. Carbon 48, 2517–2520 (2010)
147. T. Matsuda, T. Sano, K. Arakawa, O. Sakata, H. Tajiri, A. Hirose, Femtosecond laser-driven
shock-induced dislocation structures in iron. Appl. Phys. Express 7, 122704 (2014)
148. T. Sano, T. Eimura, R. Kashiwabara, T. Matsuda, Y. Isshiki, A. Hirose, S. Tsutsumi, K.
Arakawa, T. Hashimoto, K. Masaki, Femtosecond laser peening of 2024 aluminum alloy
without a sacrificial overlay under atmospheric conditions. J. Laser Appl. 29, 012005 (2017)
149. J.D. Majumdar, E.L. Gurevich, R. Kumari, A. Ostendorf, Investigation on femto-second laser
irradiation assisted shock peening of medium carbon (0.4% C) steel. Appl. Surface Sci. 364,
133–140 (2016)
150. P. Russo, A. Hu, G. Compagnini, W.W. Duley, N.Y. Zhou, Femtosecond laser ablation of highly
oriented pyrolytic graphite: a green route for large-scale production of porous graphene and
graphene quantum dots. Nanoscale 6, 2381–2389 (2014)
151. P. Russo, A. Hu, G. Compagnini, Synthesis, properties and potential applications of porous
graphene: a review. Nano-Micro Lett. 5, 260–273 (2013)
152. Q. Su, S. Bai, J. Han, Y. Ma, Y. Yu, Y. Deng, M. Wu, C. Zheng, A. Hu, Precise laser trimming
of alloy strip resistor: a comparative study with femtosecond laser and nanosecond laser. J.
Laser Appl. 32, 022013 (2020)
153. C. Zheng, A. Hu, R. Li, D. Bridges, T. Chen, Fabrication of embedded microball lens in
PMMA with high repetition rate femtosecond fiber laser. Opt. Express 23, 17584–17598
(2015)
154. D.C. Cox, R.D. Forrest, P.R. Smith, V. Stolojan, S.R.P. Silva, Study of the current stressing in
nanomanipulated three-dimensional carbon nanotube structures. Appl. Phys. Lett. 87, 033102
(2005)
155. K. Keshoju, H. Xing, L. Sun, Magnetic field driven nanowire rotation in suspension. Appl.
Phys. Lett. 91, 123114 (2007)
156. E.R. Dufresne, D.G. Grier, Optical tweezer arrays and optical substrates created with
diffractive optics. Rev. Sci. Instrum. 69, 1974–1977 (1998)
157. B.J. Roxworthy, K.C. Toussaint, Femtosecond-pulsed plasmonic nanotweezers. Sci. Rep. 2,
660 (2012)
158. C. Cheng, S. Wang, J. Wu, Y. Yu, R. Li, S. Eda, J. Chen, G. Feng, B. Lawrie, A. Hu, Bisphenol
a sensors on polyimide fabricated by laser direct writing for onsite river water monitoring at
attomolar concentration. ACS Appl. Mater. Interfaces. 8, 17784–17792 (2016)
69
138. M. Maillard, P. Huang, L. Brus, Silver nanodisk growth by surface plasmon enhanced
photoreduction of adsorbed [Ag +]. Nano Lett. 3, 1611–1615 (2003)
139. S. Bai, W. Zhou, Y. Lin, Y. Zhao, T. Chen, A. Hu, W.W. Duley, Ultraviolet pulsed laser
interference lithography and application of periodic structured Ag-nanoparticle films for
surface-enhanced Raman spectroscopy. J. Nanopart. Res. 16, 2470 (2014)
140. Y. Nakata, Y. Matsuba, K. Murakawa, N. Miyanaga, Change of interference pattern using
fundamental and second-harmonic wavelengths by phase shift of a beam. Appl. Phys. A 117,
207–210 (2014)
141. S. Bai, D. Serien, A. Hu, K. Sugioka, 3D microfluidic surface-enhanced Raman spectroscopy
(SERS) chips fabricated by all-femtosecond-laser-processing for real-time sensing of toxic
substances. Adv. Funct. Mater. 28, 1706262 (2018)
142. S.M. Yalisove, K. Sugioka, C.P. Grigoropoulos, Advances and opportunities of ultrafast laser
synthesis and processing. MRS Bull. 41, 955–959 (2016)
143. A. Hu, J. Sanderson, A.A. Zaidi, C. Wang, T. Zhang, Y. Zhou, W.W. Duley, Direct synthesis
of polyyne molecules in acetone by dissociation using femtosecond laser irradiation. Carbon
46, 1823–1825 (2008)
144. L. Rapp, B. Haberl, C.J. Pickard, J.E. Bradby, E.G. Gamaly, J.S. Williams, A.V. Rode,
Experimental evidence of new tetragonal polymorphs of silicon formed through ultrafast
laser-induced confined microexplosion. Nat. Commun. 6, 7555 (2015)
145. A.A. Zaidi, A. Hu, D.E. Henneke, W.W. Duley, Femtosecond laser irradiation of liquid
alkanes: mechanism of polyyne formation. Chem. Phys. Lett. 723, 151–154 (2019)
146. A.A. Zaidi, A. Hu, M.J. Wesolowski, X. Fu, J.H. Sanderson, Y. Zhou, W.W. Duley, Time
of flight mass spectrometry of polyyne formation in the irradiation of liquid alkanes with
femtosecond laser pulses. Carbon 48, 2517–2520 (2010)
147. T. Matsuda, T. Sano, K. Arakawa, O. Sakata, H. Tajiri, A. Hirose, Femtosecond laser-driven
shock-induced dislocation structures in iron. Appl. Phys. Express 7, 122704 (2014)
148. T. Sano, T. Eimura, R. Kashiwabara, T. Matsuda, Y. Isshiki, A. Hirose, S. Tsutsumi, K.
Arakawa, T. Hashimoto, K. Masaki, Femtosecond laser peening of 2024 aluminum alloy
without a sacrificial overlay under atmospheric conditions. J. Laser Appl. 29, 012005 (2017)
149. J.D. Majumdar, E.L. Gurevich, R. Kumari, A. Ostendorf, Investigation on femto-second laser
irradiation assisted shock peening of medium carbon (0.4% C) steel. Appl. Surface Sci. 364,
133–140 (2016)
150. P. Russo, A. Hu, G. Compagnini, W.W. Duley, N.Y. Zhou, Femtosecond laser ablation of highly
oriented pyrolytic graphite: a green route for large-scale production of porous graphene and
graphene quantum dots. Nanoscale 6, 2381–2389 (2014)
151. P. Russo, A. Hu, G. Compagnini, Synthesis, properties and potential applications of porous
graphene: a review. Nano-Micro Lett. 5, 260–273 (2013)
152. Q. Su, S. Bai, J. Han, Y. Ma, Y. Yu, Y. Deng, M. Wu, C. Zheng, A. Hu, Precise laser trimming
of alloy strip resistor: a comparative study with femtosecond laser and nanosecond laser. J.
Laser Appl. 32, 022013 (2020)
153. C. Zheng, A. Hu, R. Li, D. Bridges, T. Chen, Fabrication of embedded microball lens in
PMMA with high repetition rate femtosecond fiber laser. Opt. Express 23, 17584–17598
(2015)
154. D.C. Cox, R.D. Forrest, P.R. Smith, V. Stolojan, S.R.P. Silva, Study of the current stressing in
nanomanipulated three-dimensional carbon nanotube structures. Appl. Phys. Lett. 87, 033102
(2005)
155. K. Keshoju, H. Xing, L. Sun, Magnetic field driven nanowire rotation in suspension. Appl.
Phys. Lett. 91, 123114 (2007)
156. E.R. Dufresne, D.G. Grier, Optical tweezer arrays and optical substrates created with
diffractive optics. Rev. Sci. Instrum. 69, 1974–1977 (1998)
157. B.J. Roxworthy, K.C. Toussaint, Femtosecond-pulsed plasmonic nanotweezers. Sci. Rep. 2,
660 (2012)
158. C. Cheng, S. Wang, J. Wu, Y. Yu, R. Li, S. Eda, J. Chen, G. Feng, B. Lawrie, A. Hu, Bisphenol
a sensors on polyimide fabricated by laser direct writing for onsite river water monitoring at
attomolar concentration. ACS Appl. Mater. Interfaces. 8, 17784–17792 (2016)
