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Transactions of the IMF
The International Journal of Surface Engineering and Coatings
Volume 100, 2022 - Issue 3
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Research Article

Preparation of nanoporous copper foil by chemical dealloying from electro-deposited CuZn alloy

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Pages 145-151 | Received 08 Sep 2021, Accepted 14 Nov 2021, Published online: 14 Mar 2022

References

  • J. Zhang and C. M. Li: Nanoporous metals: fabrication strategies and advanced electrochemical applications in catalysis, sensing and energy systems. Chem. Soc. Rev., 2012, 41(21), 7016.
  • J. Ye, A. C. Baumgaertel and Y M. Wang: Structural optimization of 3D porous electrodes for high-rate performance lithium ion batteries. Acs Nano., 2015, 9(2), 2194–2202.
  • A. Wittstock, V. Zielasek and J. Biener: Nanoporous gold catalysts for selective gas-phase oxidative coupling of methanol at low temperature. Science, 2010, 327(5963), 319–322.
  • I. V. Okulov: Open porous dealloying-based biomaterials as a novel biomaterial platform. Mat. Sci. Eng. C -Mater., 2018, 88, 95–103.
  • B. Cta, D. Sza and E. Hwa: Three-dimensional nanoporous copper and reduced graphene oxide composites as enhanced sensing platform for electrochemical detection of carbendazim. J. Electroanal. Chem., 2019, 847, 113243.
  • S. Sattayasamitsathit, P. Thavarungkul and C Thammakhet: Fabrication of nanoporous copper film for electrochemical detection of glucose. Electroanal., 2009, 21(21), 2371–2377.
  • T. Hoang, S. Ma and J. I. Gold: Nano porous copper films by additive-controlled electrodeposition: CO2 reduction catalysis. ACS Catal., 2017, 7(5), 3313–3321.
  • B. Lin, L. Kong and P. Hodgson: Controlled porosity and pore size of nano-porous gold by thermally assisted chemical dealloying – a SAXS study. RSC Adv., 2017, 7(18), 10821.
  • L. Dumée, H. Li and L. Bao: The fabrication and surface functionalization of porous metal frameworks – a review. J. Mater. Chem. A., 2013, 1(48), 15185.
  • Q. Zhen and J. R. Weissmüller: Hierarchical nested-network nanostructure by dealloying. Acs Nano., 2013, 7(7), 5948–5954.
  • A. T. Vagramyan: Technology of electrodeposition. J. Electrochem. Soc., 1963, 110(6), 122C.
  • T. Banerjee and A. J. Allmand: Experiments on the electrodeposition of brass from cyanide solutions. Trans. Faraday Soc., 1948, 44(10), 819.
  • A. Brenner: Electrodeposition of alloys: principles and practice; 1963, New York, Academic Press.
  • N. Piccinini, G. N. Ruggiero and G. Baldi: Risk of hydrocyanic acid release in the electroplating industry. J. Hazard. Mater., 2000, 71(1/3), 395–407.
  • M. R. H. de Almeida, E. P. Barbano, M. F. de Carvalho, I. A. Carlos, J. L. P. Siqueira and L. L. Barbosa: Electrodeposition of copper–zinc from an alkaline bath based on EDTA. Surf. Coat. Technol., 2011, 206(1), 95–102.
  • L. F. Senna, S. L. Díaz and L. Sathler: Electrodeposition of copper–zinc alloys in pyrophosphate-based electrolytes. J. Appl. Electrochem., 2003, 33(12), 1155–1161.
  • I. A. Carlos and M. R. H. De Almeida: Study of the influence of the polyalcohol sorbitol on the electrodeposition of copper–zinc films from a non-cyanide bath. J. Electroanal. Chem., 2004, 562, 153–159.
  • D. D. Filippo, A. Rossi and D. Atzei: A tartrate-based alloy bath for brass-plated steel wire production. J. Appl. Electrochem., 1992, 22(1), 64–72.
  • X. F. Yu: Cyanide-free copper-zinc alloy electroplating process for imitation gold. Electroplating Finishing, 2008, 11, 8–10.
  • F. L. G. Silva, D. C. B. D. Lago and E. D’elia: Electrodeposition of Cu–Zn alloy coatings from citrate baths containing benzotriazole and cysteine as additives. J. Appl. Electrochem., 2010, 40(11), 2013–2022.
  • F. B. A. Ferreira, F. L. G. Silva and A. S. Luna: Response surface modeling and optimization to study the influence of deposition parameters on the electrodeposition of Cu–Zn alloys in citrate medium. J. Appl. Electrochem., 2007, 37(4), 473–481.
  • S. B. Jundhale and C. D. Lockhande: Electrodeposition of samarium from tartrate bath. Mater. Chem. Phys., 1991, 27(3), 265–278.
  • C. Ramírez and J. A. Calderón: Study of the effect of Triethanolamine as a chelating agent in the simultaneous electrodeposition of copper and zinc from non-cyanide electrolytes. J. Electroanal. Chem., 2016, 765, 132–139.
  • R. Juskenas, V. Karpaičiene, V. Pakstas and A. Selskis: Electrochemical and XRD studies of Cu-Zn coatings electrodeposited in solution with D-mannitol. J. Electroanal. Chem., 2007, 602(2), 237–244.
  • J. P. Yue, F. Z. Yang, Z. Q. Tian and S. M. Zhou: Electrocrystallization of Pd-Ni alloys on glassy carbon electrode. Acta Phys.-Chim. Sin., 2011, 27(06), 1446–1450.
  • A. J. Bard and R. L. Faulkner: Fundamentals and applications. Electrochemical Methods, 2001, 2(482), 580–632.
  • G. Feng, Y. Xiong and H. Wang: Cyclic voltammetry investigation of diffusion of ferrocene within propylene carbonate organogel formed by gelator. Electrochim. Acta, 2008, 53(28), 8253–8257.
  • Z. Chen, M. L. Zhang and W. Han: Electrodeposition of Li and electrochemical formation of Mg–Li alloys from the eutectic LiCl–KCl. J. Alloy. Compd., 2008, 464(1-2), 174–178.
  • D. Grujicic and B. Pesic: Reaction and nucleation mechanisms of copper electrodeposition from ammoniacal solutions on vitreous carbon. Electrochimica Acta, 2005, 50(22), 4426–4443.
  • B. Scharifker and G. Hills: Theoretical and experimental studies of multiple nucleation. Electrochimica Acta, 1983, 28(7), 879–889.

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