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114. S. Anisimov, B. Kapeliovich, T. Perelman, Electron emission from metal surfaces exposed to
ultrashort laser pulses. Zh. Eksp. Teor. Fiz. 66, 375–377 (1974)
115. B.N. Chichkov, C. Momma, S. Nolte, F. von Alvensleben, A. Tunnermann, Appl. Phys. A 63,
109 (1996)
116. M.D. Shirk, P.A. Molian, Ultra-short pulsed laser ablation of highly oriented pyrolytic
graphite. Carbon 39, 1183–1193 (2001)
117. W.W. Duley (UV Lasers: Effects and Applications in Materials Science (Cambridge University
Press, 2005)
118. M.D. Perry, B.C. Stuart, P.S. Banks, M.D. Feit, V. Yanovsky, A.M. Rubenchik, Ultrashortpulse laser machining of dielectric materials. J. Appl. Phys. 85, 6803–6810 (1999)
119. T.L. Bergman, F.P. Incropera, D.P. DeWitt, A.S. Lavine, Fundamentals of Heat and Mass
Transfer (Wiley, 2011)
120. J.H. Lienhard, A Heat Transfer Textbook (Courier Dover Publications, 2019)
121. D. Bergström, The absorption of laser light by rough metal surfaces (2008)
122. Z. Yang, J. Hao, S. Yuan, S. Lin, H.M. Yau, J. Dai, S.P. Lau, Field-effect transistors based
on amorphous black phosphorus ultrathin films by pulsed laser deposition. Adv. Mater. 27,
3748–3754 (2015)
123. L.L. Taylor, R.E. Scott, J. Qiao, Integrating two-temperature and classical heat accumulation
models to predict femtosecond laser processing of silicon. Opt. Mater. Express 8, 648–658
(2018)
124. Z. Lin, L.V. Zhigilei, V. Celli, Electron-phonon coupling and electron heat capacity of metals
under conditions of strong electron-phonon nonequilibrium. Phys. Rev. B 77, 075133 (2008)
125. Y. Wang, Z. Lu, X. Ruan, First principles calculation of lattice thermal conductivity of metals
considering phonon-phonon and phonon-electron scattering. J. Appl. Phys. 119, 225109
(2016)
126. S.W. Holman, R.R. Lawrence, L. Barr (1895)
127. U. Nerle, M.K. Rabinal, Thermal oxidation of copper for favorable formation of cupric oxide
(CuO) semiconductor. IOSR J. Appl. Phys. 5, 1–7 (2013)
128. M. Kaur, K.P. Muthe, S.K. Despande, S. Choudhury, J.B. Singh, N. Verma, S.K. Gupta, J.V.
Yakhmi, Growth and branching of CuO nanowires by thermal oxidation of copper. J. Cryst.
Growth 289, 670–675 (2006)
129. J.K. Chen, D.Y. Tzou, J.E. Beraun, Numerical investigation of ultrashort laser damage in
semiconductors. Int. J. Heat Mass Transf. 48, 501–509 (2005)
130. Y. Bentor, Periodic Table: Copper. http://www.chemicalelements.com/elements/cu.html
131. J.P. Abid, A.W. Wark, P.F. Brevet, H.H. Girault, Preparation of silver nanoparticles in solution
from a silver salt by laser irradiation. Chem. Commun. 792–793 (2002). https://doi.org/10.
1039/b200272h
132. S. Bai, Y.-H. Lin, X.-P. Zhang, W.-P. Zhou, T. Chen, Y. Ma, T.-X. Hou, D. Bridges, K.D.
Oakes, A. Hu, Two-step photonic reduction of controlled periodic silver nanostructures for
surface-enhanced Raman spectroscopy. Plasmonics 10, 1675–1685 (2015)
133. S. Bai, S. Zhang, W. Zhou, D. Ma, Y. Ma, P. Joshi, A. Hu, Laser-assisted reduction of highly
conductive circuits based on copper nitrate for flexible printed sensors. Nano-Micro Lett. 9,
42 (2017)
134. E. Marzbanrad, A. Hu, B. Zhao, Y. Zhou, Room temperature nanojoining of triangular and
hexagonal silver nanodisks. J. Phys. Chem. C 117, 16665–16676 (2013)
135. J. Bai, Y. Qin, C. Jiang, L. Qi, Polymer-controlled synthesis of silver nanobelts and hierarchical
nanocolumns. Chem. Mater. 19, 3367–3369 (2007)
136. C.L. Thomsen, D. Madsen, J. Tho/gersen, J.R. Byberg, S.R. Keiding, Femtosecond spectroscopy of the dissociation and geminate recombination of aqueous CS2. J. Chem. Phys.
111, 703–710
137. C.R. Wang, A. Hu, Q.B. Lu, Direct observation of the transition state of ultrafast electron
transfer reaction of a radiosensitizing drug bromodeoxyuridine. J. Chem. Phys. 124, 241102
(2006)
A. Hu et al.
114. S. Anisimov, B. Kapeliovich, T. Perelman, Electron emission from metal surfaces exposed to
ultrashort laser pulses. Zh. Eksp. Teor. Fiz. 66, 375–377 (1974)
115. B.N. Chichkov, C. Momma, S. Nolte, F. von Alvensleben, A. Tunnermann, Appl. Phys. A 63,
109 (1996)
116. M.D. Shirk, P.A. Molian, Ultra-short pulsed laser ablation of highly oriented pyrolytic
graphite. Carbon 39, 1183–1193 (2001)
117. W.W. Duley (UV Lasers: Effects and Applications in Materials Science (Cambridge University
Press, 2005)
118. M.D. Perry, B.C. Stuart, P.S. Banks, M.D. Feit, V. Yanovsky, A.M. Rubenchik, Ultrashortpulse laser machining of dielectric materials. J. Appl. Phys. 85, 6803–6810 (1999)
119. T.L. Bergman, F.P. Incropera, D.P. DeWitt, A.S. Lavine, Fundamentals of Heat and Mass
Transfer (Wiley, 2011)
120. J.H. Lienhard, A Heat Transfer Textbook (Courier Dover Publications, 2019)
121. D. Bergström, The absorption of laser light by rough metal surfaces (2008)
122. Z. Yang, J. Hao, S. Yuan, S. Lin, H.M. Yau, J. Dai, S.P. Lau, Field-effect transistors based
on amorphous black phosphorus ultrathin films by pulsed laser deposition. Adv. Mater. 27,
3748–3754 (2015)
123. L.L. Taylor, R.E. Scott, J. Qiao, Integrating two-temperature and classical heat accumulation
models to predict femtosecond laser processing of silicon. Opt. Mater. Express 8, 648–658
(2018)
124. Z. Lin, L.V. Zhigilei, V. Celli, Electron-phonon coupling and electron heat capacity of metals
under conditions of strong electron-phonon nonequilibrium. Phys. Rev. B 77, 075133 (2008)
125. Y. Wang, Z. Lu, X. Ruan, First principles calculation of lattice thermal conductivity of metals
considering phonon-phonon and phonon-electron scattering. J. Appl. Phys. 119, 225109
(2016)
126. S.W. Holman, R.R. Lawrence, L. Barr (1895)
127. U. Nerle, M.K. Rabinal, Thermal oxidation of copper for favorable formation of cupric oxide
(CuO) semiconductor. IOSR J. Appl. Phys. 5, 1–7 (2013)
128. M. Kaur, K.P. Muthe, S.K. Despande, S. Choudhury, J.B. Singh, N. Verma, S.K. Gupta, J.V.
Yakhmi, Growth and branching of CuO nanowires by thermal oxidation of copper. J. Cryst.
Growth 289, 670–675 (2006)
129. J.K. Chen, D.Y. Tzou, J.E. Beraun, Numerical investigation of ultrashort laser damage in
semiconductors. Int. J. Heat Mass Transf. 48, 501–509 (2005)
130. Y. Bentor, Periodic Table: Copper. http://www.chemicalelements.com/elements/cu.html
131. J.P. Abid, A.W. Wark, P.F. Brevet, H.H. Girault, Preparation of silver nanoparticles in solution
from a silver salt by laser irradiation. Chem. Commun. 792–793 (2002). https://doi.org/10.
1039/b200272h
132. S. Bai, Y.-H. Lin, X.-P. Zhang, W.-P. Zhou, T. Chen, Y. Ma, T.-X. Hou, D. Bridges, K.D.
Oakes, A. Hu, Two-step photonic reduction of controlled periodic silver nanostructures for
surface-enhanced Raman spectroscopy. Plasmonics 10, 1675–1685 (2015)
133. S. Bai, S. Zhang, W. Zhou, D. Ma, Y. Ma, P. Joshi, A. Hu, Laser-assisted reduction of highly
conductive circuits based on copper nitrate for flexible printed sensors. Nano-Micro Lett. 9,
42 (2017)
134. E. Marzbanrad, A. Hu, B. Zhao, Y. Zhou, Room temperature nanojoining of triangular and
hexagonal silver nanodisks. J. Phys. Chem. C 117, 16665–16676 (2013)
135. J. Bai, Y. Qin, C. Jiang, L. Qi, Polymer-controlled synthesis of silver nanobelts and hierarchical
nanocolumns. Chem. Mater. 19, 3367–3369 (2007)
136. C.L. Thomsen, D. Madsen, J. Tho/gersen, J.R. Byberg, S.R. Keiding, Femtosecond spectroscopy of the dissociation and geminate recombination of aqueous CS2. J. Chem. Phys.
111, 703–710
137. C.R. Wang, A. Hu, Q.B. Lu, Direct observation of the transition state of ultrafast electron
transfer reaction of a radiosensitizing drug bromodeoxyuridine. J. Chem. Phys. 124, 241102
(2006)
