| Literature DB >> 28058652 |
Yang Jeong Park1, Jung Woo Kim1, Ghafar Ali2, Hyun Jin Kim1, Yacine Addad3, Sung Oh Cho4.
Abstract
We have presented a method to prepare a uniform anodic nanoporous oxide film on the surface of a cylindrical zircaloy (Zr) tube. The distribution of the electric field around the Zr tube determines the distribution of the thickness of the anodic nanoporous oxide film. The electric field generated when a cylindrical Zr tube is electrochemically anodized was simulated by using commercial code COMSOL. When four Pt wires were used as counter electrodes, a uniform electric field was achieved with minimal use of Pt. Based on the simulation results, a cylindrical Zr tube was anodized and the distribution of the thickness of the anodic nanoporous oxide layer was measured by FESEM. Also, mass production of uniform nanoporous anodic oxide films was possible by symmetrically arranging the zircaloy tubes and Pt wires.Entities:
Keywords: Anodization; Electric field; Nanopore; Oxide layer; Simulation; Thickness; Zircaloy tube
Year: 2017 PMID: 28058652 PMCID: PMC5216014 DOI: 10.1186/s11671-016-1774-1
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Cross-sectional BSE-FESEM images of the anodized zircaloy tube in ethylene glycol with 1 wt% H2O and 0.3 wt% NH4F for 5 min at the voltage of 90 V by using the one-wire Pt cathode
Fig. 2Simulation results of the electric field distribution of the a one-wire, b two-wire, and c four-wire Pt cathode system when 90 V of voltage is applied to the system
Fig. 3Cross-sectional BSE-FESEM images of anodized zircaloy tube in ethylene glycol with 1 wt% H2O and 0.3 wt% NH4F for 5 min at the voltage of 90 V by using the two-wire Pt cathode
Fig. 4Cross-sectional BSE-FESEM images of anodized zircaloy tube in ethylene glycol with 1 wt% H2O and 0.3 wt% NH4F for 5 min at the voltage of 90 V by using the four-wire Pt cathode
Fig. 5a Mechanical support system of the 30-cm-long zircaloy tube. b The anodized result of the tube. c–e FESEM images of nanoporous ZrO2 layers fabricated at different positions
Fig. 6Schematic image of regularly and two-dimensionally arranged zircaloy tubes and wire electrodes with the calculation result of the electric field distribution of the arrangement