|
|
Composition and Semi-conductive Characteristic of Passive Film Formed on γΝ-phase in a Borax Buffer Solution |
Guangyu LI1( ), Mingkai LEI2 |
1 Department of Mechanical and Electrical Engineering, Yingkou Institute of Technology, Yingkou 115014, China 2 School of Materials Science and Engineering, Dalian University of Technology, Dalian 116024, China |
|
|
Abstract A high-nitrogen containing face-centered-cubic phase (γΝ) formed on AISI 304L austenitic stainless steel surface via plasma source nitriding. The chemical composition of the passive film on the γΝ-phase was characterized by means of AES and XPS, which formed in a borax buffer solution with pH value of 8.4. The semi-conductive characteristic of the passive film on the γΝ-phase was investigated by Mott-Schottky analysis. The results showed that the passive film on the γΝ-phase was of a two-layered structure: of which the outer portion composed of iron hydroxide/oxides and chromium hydroxide/oxides exhibiting n-type semi-conductive and inner portion composed of mainly chromium oxides with a little chr-omium- and iron-nitrides exhibiting p-type semi-conductive. In comparison with the passive film on the plain stainless steel, the passive film on the γΝ-phase is much densified with lower donor- and acceptor-density and more negative of the flat band potential, thus leading to the lowering corrosion rate.
|
Received: 20 August 2016
|
|
Fund: Supported by Scientific Research Foundation of Yingkou Institute of Technology (QNL201709) |
[1] | Zhang Z L, Bell T.Structure and corrosion resistance of plasma nitrided stainless steel[J]. Surf. Eng., 1985, 1: 131 | [2] | Lei M K, Zhang Z L.Microstructure and corrosion resistance of plasma source ion nitrided austenitic stainless steel[J]. J. Vac. Sci. Technol., 1997, 15A: 421 | [3] | Picard S, Memet J B, Sabot R, et al.Corrosion behaviour, microhardness and surface characterisation of low energy, high current ion implanted austenitic stainless steel[J]. Mater. Sci. Eng., 2001, A303: 163 | [4] | Li G Y, Wang Z Y, Lei M K.Transition of wear mechanisms of plasma source nitrided AISI 316 austenitic stainless steel against ceramic counterface[J]. J. Tribol., 2012, 134: 011601 | [5] | Christiansen T, Somers M A J. On the crystallographic structure of S-phase[J]. Scr. Mater., 2004, 50: 35 | [6] | Lei M K, Liang J.X-ray diffraction of high nitrogen face centred cubic phase formed on nitrogen modified austenitic stainless steel[J]. Surf. Eng., 2010, 26: 305 | [7] | Thaiwatthana S, Li X Y, Dong H, et al.Comparison studies on properties of nitrogen and carbon S phase on low temperature plasma alloyed AISI 316 stainless steel[J]. Surf. Eng., 2002, 18: 433 | [8] | Zhu X M, Lei M K.Pitting corrosion resistance of high nitrogen f. c. c. phase in plasma source ion nitrided austenitic stainless steel[J]. Surf. Coat. Technol., 2000, 131: 400 | [9] | Gontijo L C, Machado R, Kuri S E, et al.Corrosion resistance of the layers formed on the surface of plasma-nitrided AISI 304L steel[J]. Thin Solid Films, 2006, 515: 1093 | [10] | Lei M K, Zhu X M.Role of nitrogen in pitting corrosion resistance of a high-nitrogen face-centered-cubic phase formed on austenitic stainless steel[J]. J. Electrochem. Soc., 2005, 152: B291 | [11] | Fossati A, Borgioli F, Galvanetto E, et al.Corrosion resistance properties of glow-discharge nitrided AISI 316L austenitic stainless steel in NaCl solutions[J]. Corros. Sci., 2006, 48: 1513 | [12] | Flis J, Kuczynska M.Impedance of Cr18Ni10 stainless steel in sulphate solutions after a low-temperature plasma nitriding[J]. Mater. Corros., 2003, 54: 953 | [13] | Mu?oz-Castro A E, Valencia-Alvarado R, Barocio S R, et al. Electrochemical corrosion properties of AISI 304 SS treated by low, intermediate and high temperature plasma immersion ion implantation in a toroidal vessel[J]. Surf. Coat. Technol., 2005, 200: 569 | [14] | Lebrun J P, Poirier L, Hertz D, et al.Environmentally friendly low temperature plasma processing of stainless steel components for nuclear industry[J]. Surf. Eng., 2002, 18: 423 | [15] | Belo M D C, Walls M, Hakiki N E, et al. Composition, structure and properties of the oxide films formed on the stainless steel 316L in a primary type PWR environment[J]. Corros. Sci., 1998, 40: 447 | [16] | Diercks D R, Shack W J, Muscara J.Overview of steam generator tube degradation and integrity issues[J]. Nucl. Eng. Des., 1999, 194: 19 | [17] | Han E-H, Wang J Q, Wu X Q, et al.Corrosion mechanisms of stainless steel and nickel base alloys in high temperature high pressure water[J]. Acta Metall. Sin., 2010, 46: 1379(韩恩厚, 王俭秋, 吴欣强等. 核电高温高压水中不锈钢和镍基合金的腐蚀机制[J]. 金属学报, 2010, 46: 1379) | [18] | Piao T H, Park S M.Spectroelectrochemical studies of passivation and transpassive breakdown reactions of stainless steel[J]. J. Electrochem. Soc., 1997, 144: 3371 | [19] | Hakiki N E, Boudin S, Rondot B, et al.The electronic structure of passive films formed on stainless steels[J]. Corros. Sci., 1995, 37: 1809 | [20] | Fujimoto S, Tsuchiya H.Semiconductor properties and protective role of passive films of iron base alloys[J]. Corros. Sci., 2007, 49: 195 | [21] | Macdonald D D.The point defect model for the passive state[J]. J. Electrochem. Soc., 1992, 139: 3434 | [22] | Ningshen S, Mudali U K, Mittal V K, et al.Semiconducting and passive film properties of nitrogen-containing type 316LN stainless steels[J]. Corros. Sci., 2007, 49: 481 |
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|