 
 Journal of Inorganic Materials ›› 2016, Vol. 31 ›› Issue (11): 1237-1241.DOI: 10.15541/jim20160107
• Orginal Article • Previous Articles Next Articles
YU Lian-Qing1, HUANG Cheng-Xing1, ZHANG Ya-Ping1, DONG Kai-Tuo1, HAO Lan-Zhong1
Received:2016-03-01
															
							
																	Revised:2016-06-13
															
							
															
							
																	Published:2016-11-10
															
							
																	Online:2016-10-25
															
						Supported by:CLC Number:
YU Lian-Qing, HUANG Cheng-Xing, ZHANG Ya-Ping, DONG Kai-Tuo, HAO Lan-Zhong. Photoelectrochemical Properties of MoS2 Modified TiO2 Nanotube Arrays[J]. Journal of Inorganic Materials, 2016, 31(11): 1237-1241.
| Sample | Rct /(Ω·cm-2) | Vfb/V (vs Ag/AgCl) | ND /cm-3 | 
|---|---|---|---|
| 0.4-MT | 507.6 | -0.448 | 1.40×1023 | 
| 0.8-MT | 407.4 | -0.395 | 3.38×1023 | 
| 1.5-MT | 375.6 | -0.533 | 4.02×1022 | 
| 3-MT | 322.5 | -0.508 | 7.66×1022 | 
| Pure TiO2 | 594.8 | -0.612 | 1.35×1022 | 
Table 1 Physics parameters of MoS2/TiO2
| Sample | Rct /(Ω·cm-2) | Vfb/V (vs Ag/AgCl) | ND /cm-3 | 
|---|---|---|---|
| 0.4-MT | 507.6 | -0.448 | 1.40×1023 | 
| 0.8-MT | 407.4 | -0.395 | 3.38×1023 | 
| 1.5-MT | 375.6 | -0.533 | 4.02×1022 | 
| 3-MT | 322.5 | -0.508 | 7.66×1022 | 
| Pure TiO2 | 594.8 | -0.612 | 1.35×1022 | 
| [1] | LI H, XIA Z B, CHEN J Q, et al. Constructing ternary CdS/reduced graphene oxide/TiO2 nanotube arrays hybrids for enhanced visible-light-driven photoelectrochemical and photocatalytic activity. Applied Catalysis B: Environmental, 2015, 168-169: 105-113. | 
| [2] | YU L Q, ZHI Q Q, HUANG C X, et al.Photocatalytic properties of TiO2 porous network film.Journal of Nanoscience & Nanotechnology, 2015, 15(9): 6576-6581. | 
| [3] | YU L Q, ZHANG Y P, ZHI Q Q, et al.Enhanced photoelectrochemical and sensing performance of novel TiO2 arrays to H2O2 detection.Sensors and Actuators B: Chemical, 2015, 211: 111-115. | 
| [4] | YU L Q, LIU R S, ZHANG Y P, et al.Photoelectrochemical property of Fe-N modified titania nanotube array films. Journal of Optoelectronics and Advanced Materials, 2014, 16(5/6): 519-523. | 
| [5] | GONG D, GRIMES C A, VARGHESE O K, et al.Titanium oxide nanotube arrays prepared by anodic oxidation.Journal of Materials Research, 2001, 16(12): 3331-3334. | 
| [6] | MACAK J M, TSUCHIYA H, GHICOV A, et al.TiO2 nanotubes: self-organized electrochemical formation, properties and applications.Current Opinion in Solid State & Materials Science, 2007, 11(1/2): 3-18. | 
| [7] | XIANG Q J, YU J, JARONIEC M.Synergetic effect of MoS2 and graphene as cocatalysts for enhanced photocatalytic H2 production activity of TiO2 nanoparticles.Journal of the American Chemical Society, 2012, 134(15): 6575-6578. | 
| [8] | ZHANG L M, LIU K H, WONG A B, et al.Three-dimensional spirals of atomic layered MoS2.Nano Letters, 2014, 14(11): 6418-6423. | 
| [9] | FURCHI M M, POLYUSHKIN D K, POSPISCHIL A, et al.Mechanisms of photoconductivity in atomically thin MoS2. Nano Letters, 2014, 14(11): 6165-6170. | 
| [10] | XIA X H, ZHAO X J, YE W C, et al.Highly porous Ag-Ag2S/MoS2 with additional active sites synthesized by chemical etching method for enhanced electrocatalytic hydrogen evolution.Electrochimica Acta, 2014, 142: 173-181. | 
| [11] | GAO W Y, WANG M Q, RAN C X, et al.Facile one-pot synthesis of MoS2 quantum dots-graphene-TiO2 composites for highly enhanced photocatalytic properties.Chemical Communications, 2015, 51(9): 1709-1712. | 
| [12] | MAO M L, MEI L, GUO D, et al.High electrochemical performance based on the TiO2 nanobelt@few-layered MoS2 structure for lithium-ion batteries. Nanoscale, 2014, 6(21): 12350-12353. | 
| [13] | WU W Z, WANG L, LI Y K, et al.Piezoelectricity of single-atomic-layer MoS2 for energy conversion and piezotronics. Nature, 2014, 514(7523): 470-476. | 
| [14] | DU T, WANG N, CHEN H J, et al.TiO2-based solar cells sensitized by chemical-bath-deposited few-layer MoS2.Journal of Power Sources, 2015, 275: 943-949. | 
| [15] | LI Y G, WANG H L, XIE L M, et al.MoS2 nanoparticles grown on graphene: an advanced catalyst for the hydrogen evolution Reaction.Journal of the American Chemical Society, 2011, 133(19): 7296-7299. | 
| [16] | CHEN Y, SONG B H, TANG X S, et al.Ultrasmall Fe3O4 nanoparticle/MoS2 nanosheet composites with superior performances for lithium ion batteries.Small, 2014, 10(8): 1536-1543. | 
| [17] | ZHANG L M, LIU C, WONG A B, et al.MoS2-wrapped silicon nanowires for photoelectrochemical water reduction.Nano Research, 2015, 8(1): 281-287. | 
| [18] | XIONG F Q, WEI X, ZHENG X, et al.Fabrication of multilayered TiO2 nanotube arrays and separable nanotube segments.Journal of Materials Chemistry A, 2014, 2(13): 4510-4513. | 
| [19] | ZHU X Q, YANG C, XIAO F, et al.Synthesis of nano-TiO2-decorated MoS2 nanosheets for lithium ion batteries. New Journal of Chemistry, 2015, 39(1): 683-688. | 
| [20] | MIGNUZZI S, POLLARD A J, BONINI N, et al.Effect of disorder on Raman scattering of single-layer MoS2.Physical Review B, 2015, 91(19): 195411-195417. | 
| [21] | LIN T Z, KANG B T, JEON M H, et al.Controlled layer-by-layer etching of MoS2.ACS Applied Materials & Interfaces, 2015, 7(29): 15892-15897. | 
| [22] | ZHAO Y F, YANG Z Y, ZHANG Y X, et al.Cu2O decorated with cocatalyst MoS2 for solar hydrogen production with enhanced efficiency under visible light.Journal of Physical Chemistry C, 2014, 118(26): 14238-14245. | 
| [23] | YU L Q, DONG K T, ZHANG Y P, et al.Tuned n/n or n/p heterojunctions for reduced graphene oxide and titania nanosheets and their electrochemical properties.Materials Chemistry and Physics, 2014, 148(3): 803-809. | 
| [24] | JOHN S E, MOHAPATRA S K, MISRA M.Double-wall anodic titania nanotube arrays for water photooxidation.Langmuir, 2009, 25(14): 8240-8247. | 
| [25] | DONG K T, YU L Q, ZHANG Y P, et al.Green synthesis of sulfur/graphene nanocomposite and photocatalytic performance.Science of Advanced Materials, 2014, 6(8): 1828-1835. | 
| [26] | ZHANG Y P, ZHANG A Y, YU L Q, et al.Photoelectrochemical properties of AgX(Cl,Br)-TiO2 heterojunction nanocomposites.Journal of Inorganic Materials, 2016, 31(3): 269-273. | 
| [1] | LI Yuejun, CAO Tieping, SUN Dawei. Bi4O5Br2/CeO2 Composite with S-scheme Heterojunction: Construction and CO2 Reduction Performance [J]. Journal of Inorganic Materials, 2023, 38(8): 963-970. | 
| [2] | NIU Haibin, HUANG Jiahui, LI Qianwen, MA Dongyun, WANG Jinmin. Directly Hydrothermal Growth and Electrochromic Properties of Porous NiMoO4 Nanosheet Films [J]. Journal of Inorganic Materials, 2023, 38(12): 1427-1433. | 
| [3] | YAO Yishuai, GUO Ruihua, AN Shengli, ZHANG Jieyu, CHOU Kuochih, ZHANG Guofang, HUANG Yarong, PAN Gaofei. In-situ Loaded Pt-Co High Index Facets Catalysts: Preparation and Electrocatalytic Performance [J]. Journal of Inorganic Materials, 2023, 38(1): 71-78. | 
| [4] | ZHANG Xian, ZHANG Ce, JIANG Wenjun, FENG Deqiang, YAO Wei. Synthesis, Electronic Structure and Visible Light Photocatalytic Performance of Quaternary BiMnVO5 [J]. Journal of Inorganic Materials, 2022, 37(1): 58-64. | 
| [5] | XIAO Yumin, Li Bin, QIN Lizhao, LIN Hua, LI Qing, LIAO Bin. Efficient Preparation of CuGeO3 with Controllable Morphology Using CuCl2 as Copper Source [J]. Journal of Inorganic Materials, 2021, 36(1): 69-74. | 
| [6] | WANG Juhan,WEN Xiong,LIU Chengchao,ZHANG Yuhua,ZHAO Yanxi,LI Jinlin. Preparation and Fischer-Tropsch Synthesis Performance of Hierarchical Co/Al-SiO2 Catalyst [J]. Journal of Inorganic Materials, 2020, 35(9): 999-1004. | 
| [7] | XU Yun-Qing,WANG Hai-Zeng. Sodium Magnesium Fluoride Particles of Different Morphologies: Prepared by EDTA-assisted Hydrothermal Method [J]. Journal of Inorganic Materials, 2019, 34(9): 933-937. | 
| [8] | GOU Sheng-Lian, NAI Xue-Ying, XIAO Jian-Fei, YE Jun-Wei, DONG Ya-Ping, LI Wu. Preparation and Thermal Decomposition of Basic Magnesium Chloride Whiskers [J]. Journal of Inorganic Materials, 2019, 34(7): 781-785. | 
| [9] | Wei LIU, Kai ZHENG, Dong-Hong WANG, Yi-San LEI, Huai-Lin FAN. Co3O4 Nanowire Arrays@Activated Carbon Fiber Composite Materials: Facile Hydrothermal Synthesis and Its Electrochemical Application [J]. Journal of Inorganic Materials, 2019, 34(5): 487-492. | 
| [10] | WANG Wei, LUO Shi-Jie, XIAN Cong, XIAO Qun, YANG Yang, OU Yun, LIU Yun-Ya, XIE Shu-Hong. Enhanced Thermoelectric Properties of Hydrothermal Synthesized BiCl3/Bi2S3 Composites [J]. Journal of Inorganic Materials, 2019, 34(3): 328-334. | 
| [11] | JIANG Hai-Yan, XIA Yun-Sheng, LI Yu-Zhen. Preparation and Visible-light-driven Photocatalytic Performance of Porous Rod-like FeVO4 [J]. Journal of Inorganic Materials, 2018, 33(9): 949-955. | 
| [12] | YAN Xin, LU Jin-Hua, HUI Xiao-Yan, YAN Cong-Xiang, GAO Qiang, SUN Guo-Dong. Preparation and Visible Light Photocatalytic Property of g-C3N4/MoS2 Nanosheets/GO Ternary Composite Photocatalyst [J]. Journal of Inorganic Materials, 2018, 33(5): 515-520. | 
| [13] | ZENG Yan-Fei, XIN Guo-Xiang, BULIN Chao-Ke, ZHANG Bang-Wen. One-step Preparation and Electrochemical Performance of 3D Reduced Graphene Oxide/NiO as Supercapacitor Electrodes Materials [J]. Journal of Inorganic Materials, 2018, 33(10): 1070-1076. | 
| [14] | LI Guo-Chang, WANG Ping, LIU Chang-Bo. Hydrothermal Synthesis of Whitlockite [J]. Journal of Inorganic Materials, 2017, 32(11): 1128-1132. | 
| [15] | MA Fang, CUI Ming-Fang, ZHU Jian-Hua, LI Ya-Li. Porous Hydroxyapatite Microspheres Prepared by Using Poly (Allylamine Hydrochloride) and Its Application in Drug Delivery [J]. Journal of Inorganic Materials, 2017, 32(11): 1215-1222. | 
| Viewed | ||||||
| Full text |  | |||||
| Abstract |  | |||||