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| Fabrication and Photoelectrochemical Properties of Ag/g-C3N4 Co-Sensitized TiO2 Nanotube Composite Film on Ti Substrate |
GUAN Zichao1,2, HU Juan1,3, SHI Haiyan1, DONG Shigang4( ), Liu Ya'an5, WANG Xia1, JIN Piao1, DU Ronggui1( ) |
1 State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China 2 CNOOC Changzhou Paint and Coatings Industry Research Institute Co. Ltd. , Changzhou 213016, China 3 National Center of Inspection on Additive Manufacturing Product Quality, Wuxi 214101, China 4 College of Energy, Xiamen University, Xiamen 361102, China 5 School of Materials Science and Engineering, Changzhou University, Changzhou 213164, China |
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Cite this article:
GUAN Zichao, HU Juan, SHI Haiyan, DONG Shigang, Liu Ya'an, WANG Xia, JIN Piao, DU Ronggui. Fabrication and Photoelectrochemical Properties of Ag/g-C3N4 Co-Sensitized TiO2 Nanotube Composite Film on Ti Substrate. Acta Metall Sin, 2025, 61(12): 1769-1780.
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Abstract Photoelectrochemical cathodic protection for metals, leveraging the unique photoelectrochemical properties of TiO2 semiconductor films, represents an innovative approach to corrosion protection with promising potential. However, pure TiO2 films exhibit limitations, including low visible light absorption, rapid recombination of photogenerated electrons and holes, and low photoelectric conversion efficiency. To enhance the photoelectrochemical properties of TiO2 film photoanodes, composite films are essential. In this study, a g-C3N4 layer and Ag nanoparticles were sequentially deposited onto an anodized TiO2 nanotube array film on a Ti foil via simplified chemical vapor deposition and chemical bath deposition, respectively, to enhance the TiO2 composite film's photoelectrochemical performance for metal cathodic protection applications. The results demonstrated substantial improvements in light absorption and photoelectrochemical performance for the Ag/g-C3N4 co-sensitized TiO2 nanotube composite film compared to the pure TiO2 nanotube array film. The Ag/g-C3N4/TiO2 composite film's light absorption was extended into the visible light spectrum, enhancing the separation efficiency of photogenerated electrons and holes. Under white light irradiation, the photocurrent density of the composite film in an aqueous solution containing 50% (volume fraction) ethylene glycol and 0.2 mol/L NaOH reached 135 μA/cm2, approximately 11 times that of the pure TiO2 film. Furthermore, when employed as a photoanode, the composite film on the Ti surface reduced the electrode potential of 403 stainless steel in a 0.5 mol/L NaCl solution by 530 mV relative to the steel's free corrosion potential, demonstrating a notably enhanced photoelectrochemical cathodic protection effect.
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Received: 08 April 2024
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| Fund: National Natural Science Foundation of China(21573182) |
Corresponding Authors:
DU Ronggui, professor, Tel: 13959276526, E-mail: rgdu@xmu.edu.cn; DONG Shigang, senior engineer, Tel: 13696994309, E-mail: sgdong@xmu.edu.cn
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| [1] |
Schneider J, Matsuoka M, Takeuchi M, et al. Understanding TiO2 photocatalysis: Mechanisms and materials [J]. Chem. Rev., 2014, 114: 9919
|
| [2] |
Lee K, Mazare A, Schmuki P. One-dimensional titanium dioxide nanomaterials: Nanotubes [J]. Chem. Rev., 2014, 114: 9385
|
| [3] |
Wang X T, Xu H, Nan Y B, et al. Research progress of TiO2 photocathodic protection to metals in marine environment [J]. J. Oceanol. Limnol., 2020, 38: 1018
|
| [4] |
Li H, Cui X Q, Song W Z, et al. Direct Z-scheme MgIn2S4/TiO2 heterojunction for enhanced photocathodic protection of metals under visible light [J]. Nanotechnology, 2022, 33: 165703
|
| [5] |
Guan Z C, Wang H P, Wang X, et al. Fabrication of heterostructured β-Bi2O3-TiO2 nanotube array composite film for photoelectrochemical cathodic protection applications [J]. Corros. Sci., 2018, 136: 60
|
| [6] |
Sun W X, Cui S W, Wei N, et al. Hierarchical WO3/TiO2 nanotube nanocomposites for efficient photocathodic protection of 304 stainless steel under visible light [J]. J. Alloys Compd., 2018, 749: 741
|
| [7] |
Feng C, Chen Z Y, Jing J P, et al. A novel TiO2 nanotube arrays/MgTi x O y multiphase-heterojunction film with high efficiency for photoelectrochemical cathodic protection [J]. Corros. Sci., 2020, 166: 108441
|
| [8] |
Jin P, Guan Z C, Liang Y, et al. Photocathodic protection on stainless steel by heterostructured NiO/TiO2 nanotube array film with charge storage capability [J]. Acta Phys. -Chim. Sin., 2021, 37: 1906033
|
|
金 飘, 官自超, 梁 燕 等. NiO/TiO2异质结构纳米管阵列膜对不锈钢的光生阴极保护及其储能性能(英文) [J]. 物理化学学报, 2021, 37: 1906033
|
| [9] |
Li W F, Wet L C, Shen T, et al. Ingenious preparation of “layered-closed” TiO2-BiVO4-CdS film and its highly stable and sensitive photoelectrochemical cathodic protection performance [J]. Chem. Eng. J., 2022, 429: 132511
|
| [10] |
Groenewolt M, Antonietti M. Synthesis of g-C3N4 nanoparticles in mesoporous silica host matrices [J]. Adv. Mater., 2005, 17: 1789
|
| [11] |
Wang X C, Maeda K, Thomas A, et al. A metal-free polymeric photocatalyst for hydrogen production from water under visible light [J]. Nat. Mater., 2009, 8: 76
|
| [12] |
Li W, Sohail M, Anwar U, et al. Recent progress in g-C3N4-based materials for remarkable photocatalytic sustainable energy [J]. Int. J. Hydrogen Energy, 2022, 47: 21067
|
| [13] |
Naseri A, Samadi M, Pourjavadi A, et al. Graphitic carbon nitride (g-C3N4)-based photocatalysts for solar hydrogen generation: Recent advances and future development directions [J]. J. Mater. Chem., 2017, 5A: 23406
|
| [14] |
Li N, Kong Z Z, Chen X Z, et al. Research progress of novel two-dimensional materials in photocatalysis and electrocatalysis [J]. J. Inorg. Mater., 2020, 35: 735
|
| [15] |
Yang M M, Liu J, Zhang X, et al. C3N4-sensitized TiO2 nanotube arrays with enhanced visible-light photoelectrochemical performance [J]. Phys. Chem. Chem. Phys., 2015, 17: 17887
|
| [16] |
Sun B, Lu N, Su Y, et al. Decoration of TiO2 nanotube arrays by graphitic-C3N4 quantum dots with improved photoelectrocatalytic performance [J]. Appl. Surf. Sci., 2017, 394: 479
|
| [17] |
Imbar A, Vadivel V K, Mamane H. Solvothermal synthesis of g-C3N4/TiO2 hybrid photocatalyst with a broaden activation spectrum [J]. Catalysts, 2023, 13: 46
|
| [18] |
Pham M T, Nguyen T M T, Bui D P, et al. Enhancing quantum efficiency at Ag/g-C3N4 interfaces for rapid removal of nitric oxide under visible light [J]. Sustain. Chem. Pharm., 2022, 25: 100596
|
| [19] |
Xu J T, Huang Y Y, Zhang S H, et al. Plasmon-induced hot carrier separation across multicomponent heterostructure in Ag@AgCl@g-C3N4 composites for recyclable detection-removal of organic pollutions via SERS sensing [J]. Appl. Surf. Sci., 2023, 610: 155604
|
| [20] |
Moradi R, Yousefi R, Adelpour Z, et al. The effects of Ag concentration on toluene gas sensing performance of Ag NPs decorated on g-C3N4 sheets [J]. J. Alloys Compd., 2023, 932: 167539
|
| [21] |
Qi H P, Wang H L, Zhao D Y, et al. Preparation and photocatalytic activity of Ag-modified GO-TiO2 mesocrystals under visible light irradiation [J]. Appl. Surf. Sci., 2019, 480: 105
|
| [22] |
Zhao S D, Chen J R, Liu Y F, et al. Silver nanoparticles confined in shell-in-shell hollow TiO2 manifesting efficiently photocatalytic activity and stability [J]. Chem. Eng. J., 2019, 367: 249
|
| [23] |
Wang C H, Qin D D, Shan D L, et al. Assembly of g-C3N4-based type II and Z-scheme heterojunction anodes with improved charge separation for photoelectrojunction water oxidation [J]. Phys. Chem. Chem. Phys., 2017, 19: 4507
|
| [24] |
Zhang Q, Wang H, Chen S, et al. Three-dimensional TiO2 nanotube arrays combined with g-C3N4 quantum dots for visible light-driven photocatalytic hydrogen production [J]. RSC Adv., 2017, 7: 13223
|
| [25] |
Liu H, Yu D Q, Sun T B, et al. Fabrication of surface alkalinized g-C3N4 and TiO2 composite for the synergistic adsorption-photocatalytic degradation of methylene blue [J]. Appl. Surf. Sci., 2019, 473: 855
|
| [26] |
Fajrina N, Tahir M. 2D-montmorillonite-dispersed g-C3N4/TiO2 2D/0D nanocomposite for enhanced photo-induced H2 evolution from glycerol-water mixture [J]. Appl. Surf. Sci., 2019, 471: 1053
|
| [27] |
Zhou D T, Chen Z, Yang Q, et al. Facile construction of g-C3N4 nanosheets/TiO2 nanotube arrays as Z-scheme photocatalyst with enhanced visible-light performance [J]. ChemCatChem, 2016, 8: 3064
|
| [28] |
Ni J F, Fu S D, Yuan Y F, et al. Boosting sodium storage in TiO2 nanotube arrays through surface phosphorylation [J]. Adv. Mater., 2018, 30: 1704337
|
| [29] |
Lai Y K, Sun L, Chen Y C, et al. Effects of the structure of TiO2 nanotube array on Ti substrate on its photocatalytic activity [J]. J. Electrochem. Soc., 2006, 153: D123
|
| [30] |
Sun L, Li J, Wang C L, et al. Ultrasound aided photochemical synthesis of Ag loaded TiO2 nanotube arrays to enhance photocatalytic activity [J]. J. Hazard. Mater., 2009, 171: 1045
|
| [31] |
Xie K P, Sun L, Wang C L, et al. Photoelectrocatalytic properties of Ag nanoparticles loaded TiO2 nanotube arrays prepared by pulse current deposition [J]. Electrochim. Acta, 2010, 55: 7211
|
| [32] |
Jing L Q, Qu Y C, Wang B Q, et al. Review of photoluminescence performance of nano-sized semiconductor materials and its relationships with photocatalytic activity [J]. Sol. Energy Mater. Sol. Cells, 2006, 90: 1773
|
| [33] |
Etacheri V, Di Valentin C, Schneider J, et al. Visible-light activation of TiO2 photocatalysts: Advances in theory and experiments [J]. J. Photochem. Photobiol, 2015, 25C: 1
|
| [34] |
Wang Q Y, Zhong J S, Zhang M, et al. In situ fabrication of TiO2 nanotube arrays sensitized by Ag nanoparticles for enhanced photoelectrochemical performance [J]. Mater. Lett., 2016, 182: 163
|
| [35] |
Ge M Z, Cao C Y, Li S H, et al. In situ plasmonic Ag nanoparticle anchored TiO2 nanotube arrays as visible-light-driven photocatalysts for enhanced water splitting [J]. Nanoscale, 2016, 8: 5226
|
| [36] |
Liu W J, Yin K C, He F, et al. A highly efficient reduced graphene oxide/SnO2/TiO2 composite as photoanode for photocathodic protection of 304 stainless steel [J]. Mater. Res. Bull., 2019, 113: 6
|
| [37] |
Zuo S X, Liu Z, Liu W J, et al. TiO2 nanorod arrays on the conductive mica combine photoelectrochemical cathodic protection with barrier properties [J]. J. Alloys Compd., 2019, 776: 529
|
| [38] |
Cui J, Pei Y S. Enhanced photocathodic protection performance of Fe2O3/TiO2 heterojunction for carbon steel under simulated solar light [J]. J. Alloys Compd., 2019, 779: 183
|
| [39] |
Yang Y, Cheng Y F. One-step facile preparation of ZnO nanorods as high-performance photoanodes for photoelectrochemical cathodic protection [J]. Electrochim. Acta, 2018, 276: 311
|
| [40] |
Guo Y, Jin P, Shao M H, et al. Effect of an environmentally-friendly diisooctyl sebacate-based mixed corrosion inhibitor on reinforcing steel [J]. Acta Phys. -Chim. Sin., 2022, 38: 2003033
|
|
郭 亚, 金 飘, 邵敏华 等. 基于癸二酸二异辛酯的环保型复合缓蚀剂对钢筋的缓蚀效应(英文) [J]. 物理化学学报, 2022, 38: 2003033
|
| [41] |
Pan G T, Li J H, Zhang G G, et al. Binder-integrated Bi/BiOI/TiO2 as an anti-chloride corrosion coating for enhanced photocathodic protection of 304 stainless steel in simulated seawater [J]. J. Alloys Compd., 2023, 938: 168469
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