49
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Effects of processing conditions and fine powder loading on real and electroactive surface areas of porous nickel manufactured by lost carbonate sintering

& ORCID Icon
Pages 537-547 | Received 14 Feb 2023, Accepted 11 Apr 2023, Published online: 24 Apr 2023

References

  • Ashby MF, Evans T, Fleck NA, et al. Metal foams: A design guide. Boston, MA: Elsevier; 2000.
  • Bard AJ, Faulkner LR, White HS. Electrochemical methods: fundamentals and applications. Oxford, UK: John Wiley & Sons; 2022.
  • Diao KK, Xiao Z, Zhao YY. Specific surface areas of porous Cu manufactured by lost carbonate sintering: measurements by quantitative stereology and cyclic voltammetry. Mater Chem Phys. 2015;162:571–579.
  • Lu TJ, Stone HA, Ashby MF. Heat transfer in open-cell metal foams. Acta Mater. 1998;46(10):3619–3635.
  • Srinivasan V, Weidner JW. An electrochemical route for making porous nickel oxide electrochemical capacitors. J Electrochem Soc. 1997;144(8):L210–L213.
  • Tan YH, Davis JA, Fujikawa K, et al. Surface area and pore size characteristics of nanoporous gold subjected to thermal, mechanical, or surface modification studied using gas adsorption isotherms, cyclic voltammetry, thermogravimetric analysis, and scanning electron microscopy. J Mater Chem. 2012;22(14):6733.
  • Pan Q, Jin H, Wang H, et al. Flower-like CuO film-electrode for lithium ion batteries and the effect of surface morphology on electrochemical performance. Electrochim Acta. 2007;53(2):951–956.
  • Trasatti S, Petrii OA. Real surface area measurements in electrochemistry. J Macromol Sci Part A Pure Appl Chem. 1991;63(5):711–734.
  • Smith REG, Davies TJ, Baynes NdB, et al. The electrochemical characterisation of graphite felts. J Electroanal Chem. 2015;747:29–38.
  • Xu S, Hartvickson S, Zhao JX. Increasing surface area of silica nanoparticles with a rough surface. ACS Appl Mater Interfaces. 2011;3(6):1865–1872.
  • Xia Y, Yoshio M, Noguchi H. Improved electrochemical performance of LiFePO4 by increasing its specific surface area. Electrochim Acta. 2006;52(1):240–245.
  • Banerjee S, Choudhary VR. A method for increasing the surface area of perovskite-type oxides. J Chem Sci. 2000;112(5):535–542.
  • Tang W, Peterson AA, Varela AS, et al. The importance of surface morphology in controlling the selectivity of polycrystalline copper for CO2 electroreduction. Phys Chem Chem Phys. 2012;14(1):76–81.
  • Ashby MF, Bréchet YJM, Cebon D, et al. Selection strategies for materials and processes. Mater Des. 2004;25(1):51–67.
  • Zhao Y. Porous metallic materials produced by P/M methods. J Powder Met Min. 2013;02(03):Paper ID:1000e113.
  • Zhao YY, Fung T, Zhang LP, et al. Lost carbonate sintering process for manufacturing metal foams. Scr Mater. 2005;52(4):295–298.
  • Zhao YY, Sun DX. A novel sintering-dissolution process for manufacturing Al foams. Scr Mater. 2001;44(1):105–110.
  • Zhu P, Zhao Y. Mass transfer performance of porous nickel manufactured by lost carbonate sintering process. Adv Eng Mater. 2017;19(12):1700392.
  • Zhu P, Zhao Y. Effects of electrochemical reaction and surface morphology on electroactive surface area of porous copper manufactured by lost carbonate sintering. RSC Adv. 2017;7(42):26392–26400.
  • Campbell R, Bakker MG, Treiner C, et al. Electrodeposition of mesoporous nickel onto foamed metals using surfactant and polymer templates. J Porous Mater. 2004;11(2):63–69.
  • Gagnon EG. Determination of the double-layer capacity of porous nickel in KOH in the presence of faradaic current. J Appl Electrochem. 1976;6(2):95–98.
  • Qin J, Chen Q, Yang C, et al. Research process on property and application of metal porous materials. J Alloys Compd. 2016;654:39–44.
  • Molina A, Laborda E, González J, et al. Effects of convergent diffusion and charge transfer kinetics on the diffusion layer thickness of spherical micro- and nanoelectrodes. Phys Chem Chem Phys. 2013;15(19):7106–7113.
  • Amatore C, Szunerits S, Thouin L, et al. The real meaning of nernst’s steady diffusion layer concept under non-forced hydrodynamic conditions. A simple model based on levich's seminal view of convection. J Electroanal Chem. 2001;500(1):62–70.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.