[1] Kohl P 2014 Electrodeposition of Gold Modern Electroplating 5th edn Schlesinger M and Paunovic M The ECS Series of Texts and Monographs (Hoboken, NJ: John Wiley & Sons Inc.) pp 115-31
[2] Sage A T, Besant J D, Lam B, Sargent E H and Kelley S O 2014 Ultrasensitive electrochemical biomolecular detection using nanostructured microelectrodes Acc. Chem. Res. 47 2417-25
[3] Madou M J 2011 Fundamentals of Microfabrication and Nanotechnology, Three-Volume Set 3rd edn (Boca Raton, FL: CRC Press)
[4] Zhao C, Zhong G W, Kim D E, Liu J X and Liu X Y 2014 A portable lab-on-a-chip system for gold-nanoparticle-based colorimetric detection of metal ions in water Biomicrofluidics 8 052107
[5] Grabill C N, Freppon D, Hettinger M and Kuebler S M 2019 Nanoscale morphology of electrolessly deposited silver metal Appl. Surf. Sci. 466 230-43
[6] Tal A, Chen Y S, Williams H E, Rumpf R C and Kuebler S M 2007 Fabrication and characterization of three-dimensional copper metallodielectric photonic crystals Opt. Express 15 18283-93
[7] Clukay C J, Grabill C N, Hettinger M A, Dutta A, Freppon D J, Robledo A, Heinrich H, Bhattacharya A and Kuebler S M 2014 Controlling formation of gold nanoparticles generated in situ at a polymeric surface Appl. Surf. Sci. 292 128-36
[8] Formanek F, Takeyasu N, Tanaka T, Chiyoda K, Ishikawa A and Kawata S 2006 Selective electroless plating to fabricate complex three-dimensional metallic micro/nanostructures Appl. Phys. Lett. 88 083110
[9] LaFratta C N 2016 Nanoreplication printing and nanosurface processing Multiphoton Lithography: Techniques, Materials and Applications ed J Stampfl, R Liska and A Ovsianikov (Weinheim: Wiley) pp 335-53
[10] Farrer R A, LaFratta C N, Li L J, Praino J, Naughton M J, Saleh B E A, Teich M C and Fourkas J T 2006 Selective functionalization of 3D polymer microstructures J. Am. Chem. Soc. 128 1796-7
[11] Dupuy C G, Beach D B, Hurst Jr J E and Jasinski J M 1989 Laser induced deposition of copper from (triethylphosphine)cyclopentadienylcopper(I) Chem. Mater. 1 16-18
[12] Jiang H Q, Jin S Y, Wang C, Ma R Q, Song Y Y, Gao M Y, Liu X T, Shen A G, Cheng G J and Deng H X 2019 Nanoscale laser metallurgy and patterning in air using MOFs J. Am. Chem. Soc. 141 5481-9
[13] Uwada T, Wang S F, Liu T H and Masuhara H 2017 Preparation and micropatterning of gold nanoparticles by femtosecond laser-induced optical breakdown J. Photochem. Photobiol. A 346 177-86
[14] Blasco E, Müller J, Müller P, Trouillet V, Schon M, Scherer T, Barner-Kowollik C and Wegener M 2016 Fabrication of conductive 3D gold-containing microstructures via direct laser writing Adv. Mater. 28 3592-5
[15] Harada M and Kizaki S 2016 Formation mechanism of gold nanoparticles synthesized by photoreduction in aqueous ethanol solutions of polymers using in situ quick scanning x-ray absorption fine structure and small-angle x-ray scattering Cryst. Growth Des. 16 1200-12
[16] LaFratta C N, Lim D, O’Malley K, Baldacchini T and Fourkas J T 2006 Direct laser patterning of conductive wires on three-dimensional polymeric microstructures Chem. Mater. 18 2038-42
[17] Maruo S and Saeki T 2008 Femtosecond laser direct writing of metallic microstructures by photoreduction of silver nitrate in a polymer matrix Opt. Express 16 1174-9
[18] Komori T, Furukawa T, Iijima M and Maruo S 2020 Multi-scale laser direct writing of conductive metal microstructures using a 405 nm blue laser Opt. Express 28 8363-70
[19] Baldacchini T, Pons A C, Pons J, LaFratta C N, Fourkas J T, Sun Y and Naughton M J 2005 Multiphoton laser direct writing of two-dimensional silver structures Opt. Express 13 1275-80
[20] Tanaka T, Ishikawa A and Kawata S 2006 Two-photon-induced reduction of metal ions for fabricating three-dimensional electrically conductive metallic microstructure Appl. Phys. Lett. 88 081107
[21] Kaneko K, Sun H B, Duan X M and Kawata S 2003 Two-photon photoreduction of metallic nanoparticle gratings in a polymer matrix Appl. Phys. Lett. 83 1426-8
[22] Wee L M and Li L 2005 Multiple-layer laser direct writing metal deposition in electrolyte solution Appl. Surf. Sci. 247 285-93
[23] von Gutfeld R J and Sheppard K G 1998 Electrochemical microfabrication by laser-enhanced photothermal processes IBM J. Res. Dev. 42 639-53
[24] von Gutfeld R J, Gallaway J W and West A C 2009 In situ immersion plating of copper and nickel on aluminum using laser pulses for oxide removal J. Electrochem. Soc. 156 D564-9
[25] Takai T, Nakao H and Iwata F 2014 Three-dimensional microfabrication using local electrophoresis deposition and a laser trapping technique Opt. Express 22 28109-17
[26] Iwata F, Kaji M, Suzuki A, Ito S and Nakao H 2009 Local electrophoresis deposition of nanomaterials assisted by a laser trapping technique Nanotechnology 20 235303
[27] Pan H, Hwang D J, Ko S H, Clem T A, Fréchet J M J, Bauerle D and Grigoropoulos C P 2010 High-throughput near-field optical nanoprocessing of solution-deposited nanoparticles Small 6 1812-21
[28] Ko S H, Pan H, Grigoropoulos C P, Luscombe C K, Fréchet J M J and Poulikakos D 2007 All-inkjet-printed flexible electronics fabrication on a polymer substrate by low-temperature high-resolution selective laser sintering of metal nanoparticles Nanotechnology 18 345202
[29] Ko S H, Pan H, Grigoropoulos C P, Luscombe C K, Fréchet J M J and Poulikakos D 2007 Air stable high resolution organic transistors by selective laser sintering of ink-jet printed metal nanoparticles Appl. Phys. Lett. 90 141103
[30] Chung J, Ko S, Bieri N R, Grigoropoulos C P and Poulikakos D 2004 Conductor microstructures by laser curing of printed gold nanoparticle ink Appl. Phys. Lett. 84 801-3
[31] Chung J, Bieri N R, Ko S, Grigoropoulos C P and Poulikakos D 2004 In-tandem deposition and sintering of printed gold nanoparticle inks induced by continuous Gaussian laser irradiation Appl. Phys. A 79 1259-61
[32] Xia K W et al 2020 Photo-induced electrodeposition of metallic nanostructures on graphene Nanoscale 12 11063-9
[33] Liu S S, Yuan T L, Wei W, Su H and Wang W 2019 Photoassisted electrochemical micropatterning of gold film Anal. Chem. 91 9413-8
[34] Evans D H and Lingane J J 1963 Standard potentials of the couples involving AuBr4-, AuBr2- and Au In bromide media J. Electroanal. Chem. 6 1-10
[35] Vogler A and Kunkely H 2001 Photoreactivity of gold complexes Coord. Chem. Rev. 219-221 489-507
[36] Kunkely H and Vogler A 1992 Photooxidation of AuCl2 - and AuBr2 - induced by ds excitation Inorg. Chem. 31 4539-41
[37] Eustis S and El-Sayed M A 2006 Molecular mechanism of the photochemical generation of gold nanoparticles in ethylene glycol: support for the disproportionation mechanism J. Phys. Chem. B 110 14014-9
[38] Eustis S, Hsu H Y and El-Sayed M A 2005 Gold nanoparticle formation from photochemical reduction of Au3+ by continuous excitation in colloidal solutions. A proposed molecular mechanism J. Phys. Chem. B 109 4811-5
[39] Bai T T, Tan Y B, Zou J M, Nie M X, Guo Z R, Lu X and Gu N 2015 AuBr2 -engaged galvanic replacement for citrate-capped Au-Ag alloy nanostructures and their solution-based surface-enhanced Raman scattering activity J. Phys. Chem. C 119 28597-604