[1] Pan H B(潘会波). Current status of development and applications of Ti anodes in China[J]. Rare Metal Materials and Engineering(稀有金属材料与工程), 1999, 28(6): 337-339. [2] Papastefanakis N, Mantzavinos D, Katsaounis A. DSA electrochemical treatment of olive mill wastewater on Ti/RuO2 anode[J]. Journal of Applied Electrochemistry, 2010, 40(4): 729-737. [3] Kim S S, Kim S D. Application of PVD coatings for developing a DSA-type anode[J]. Thin Solid Films, 2008, 516(11): 3673-3679. [4] Comninellis C H, Vercesi G P. Characterization of DSA-type oxygen evolving electrodes: choice of a coating[J]. Journal of Applied Electrochemistry, 1991, 21(4): 335-345. [5] Trasatti S. Electrocatalysis: Understanding the success of DSA[J]. Electrochimica Acta, 2000, 45(15/16): 2377-2385. [6] Huang Y T(黄运涛), Peng Q(彭乔). The deactivation mechanism of metal oxide anode used in seawater electrolysis[J]. Rare Metal Materials and Engineering(稀有金属材料与工程), 2006, 35(10): 1610-1615. [7] Lu Y Y(逯艳英), Wu J H(吴建华), Sun M X(孙明先), et al. Prevention of ocean halobios fouling[J]. Corrosion & Protection(腐蚀与防护), 2001, 22(12): 530-534. [8] Wang B(王彬), Hou S Z(侯世忠), Han Y(韩严), et al. Recent status of development of metal oxide coated anode for antifouling by electrolyzing seawater[J]. Development and Application of Materials(材料开发与应用), 1998, 13(1): 41-45. [9] Costa C R, Botta C M, Espindola E L, et al. Electrochemical treatment of tannery wastewater using DSA electrodes[J]. Journal of Hazardous Materials, 2008, 153(1/2): 616-627. [10] Ji L(嵇雷), Wang J T(王均涛), Liu W B(刘文彬), et al. The effect of Ru:Sn on properties of Ru-Ir-Sn oxide anode coatings[J]. Journal of Electrochemistry(电化学), 2008, 14(3): 263-268. [11] Ji L(嵇雷), Wang J T(王均涛), Xu L K(许立坤), et al. The effect of annealed temperature on properties of Ru-Ir-Sn oxide anode coatings[J]. Journal of Electrochemistry(电化学), 2008, 14(2): 205-209. [12] Wang J T(王均涛), Han Y(韩严), Xu L K(许立坤), et al. The deactivation mechanism of metal oxide anode under alternative current electrolysis condition[J]. Journal of Electrochemistry(电化学), 2005, 11(4): 407-411. [13] Vazquez-Gomez L, Ferro S, De Battisti A. Preparation and characterization of RuO2-IrO2-SnO2 ternary mixtures for advanced electrochemical technology[J]. Applied Catalysis B: Environmental, 2006, 67(1): 34-40. [14] Makgae M E, Theron C C, Przybylowicz W J, et al. Preparation and surface characterization of Ti/SnO2-RuO2-IrO2 thin films as electrode material for the oxidation of phenol[J]. Materials Chemistry and Physics, 2005, 92(2): 559-564. [15] Li W Z, Liang C H, Qiu J S, et al. Carbon nanotubes as support for cathodic catalysts of direct methanol fuel cells[J]. Carbon, 2002, 40(5): 791-794. [16] Liu Z H, Lin X H, Lee J Y, et al. Preparation and characterization of platinm-based electro catalysts on multiwalled carbon nanotubes for proton exchange membrane fuel cells[J]. Langmuir, 2002, 18(10): 4054-4060. [17] Li Z(李壮), Tang Z Y(唐枝艳), Wang J J(王家君), et al. Radiation graft modification and deposition of nano-copper on carbon nanotube surface[J]. Chinese Journal of Rare Metals(稀有金属), 2010, 43(2): 215-220. [18] Bonard J M, Croci M, Klinke C, et al. Carbon nanotube films as electron field emitters[J]. Carbon, 2002, 40(10): 1715-1728. [19] Duan X Y, Ma F, Yuan Z X, et al. Comparative studies on the electro-catalytic oxidation performance of surfactant-carbon nanotube-modified PbO2 electrodes[J]. Journal of Electroanalytical Chemistry, 2012, 677/678: 90-100. [20] Zeng F G, Li X, Liu W H, et al. Synthesis of CNT film on the surface of micro-pyramid array and its intense pulsed emission characteristics[J]. Chinese Science Bulletin, 2012, 57(14): 1739-1742. [21] Huang Q Y(黄秋玉), Zeng X S(曾效舒), Zeng G(曾刚), et al. Effects of nanotubes on microstructure and mechanical properties of magnesium-zinc alloy[J]. Chinese Journal of Rare Metals(稀有金属), 2012, 36(5): 750-756. [22] Zou R J, Xue S L, Li D Y. A novel approach to improve the field emission characteristics of printed CNT films[J]. Chinese Optics Letters, 2009, 7(2): 130-133. [23] Forti J C, Olivi P, de Andrade A R. Characterisation of DSA-type coatings with nominal composition Ti/Ru0.3Ti(0.7-x)SnxO2 prepared via a polymeric precursor[J]. Electrochimica Acta, 2001, 47(6): 913-920. [24] Tang Y(唐益), Xu L K(许立坤), Wang J T(王均涛), et al. Study on the nanostructured Ti/IrO2-Ta2O5-SnO2 oxide anodes[J]. Rare Metal Materails and Engineering(稀有金属材料与工程), 2010, 39(4): 687-691. [25] Huang S T(黄松涛), Kan S R(阚素荣), Chu M Y(储茂友), et al. Cyclic voltammetry and electrochemical properties of LiMn2O4 and Li2CO3 Modified LiMn2O4[J]. Chinese Journal of Rare Metals (稀有金属), 2006, 30(4): 448-452. [26] Jiang J F(姜俊峰), Xu H B(徐海波), Wang T Y(王廷勇), et al. Study on electrocatalytic properties of TiN based IrO2+Ta2O5 coating anodes[J]. Rare Metal Materials and Engineering(稀有金属材料与工程), 2007, 36(2): 344-348.[27] Lassali T. A. F, Boodts J F C, Bulhoes L O S. Charging processes and electrocatalytic properties of IrO2/TiO2/SnO2 oxide films investigated by in situ AC impedance measurements[J]. Electrochimica Acta. 1999, 44(24): 4203-4216.[28] Fang D(方度), Jiang L S(蒋兰荪), Wu Z D(吴正德). Chlor Alkali Technology(氯碱工艺学)[M]. Beijing: Chemical Industry Press(化学工业出版社), 1990: 69-93. |