Hematite Nanorod Electrodes Modified with Molybdenum: Photoelectrochemical Studies

被引:25
|
作者
Cots, Ainhoa [1 ,2 ]
Cibrev, Dejan [1 ,2 ]
Bonete, Pedro [1 ,2 ]
Gomez, Roberto [1 ,2 ]
机构
[1] Univ Alicante, Dept Quim Fis, Apartat 99, Alicante 03080, Spain
[2] Univ Alicante, Inst Univ Electroquim, Apartat 99, Alicante 03080, Spain
来源
CHEMELECTROCHEM | 2017年 / 4卷 / 03期
关键词
doping; hematite; molybdenum; photoelectrochemistry; water splitting; WATER OXIDATION; DOPED HEMATITE; ALPHA-FE2O3; ELECTRODES; TRANSIENT ABSORPTION; THIN-FILMS; DYNAMICS; ARRAYS; OXIDE; SPECTROSCOPY; PHOTOANODES;
D O I
10.1002/celc.201600644
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The preparation of hematite nanorod electrodes modified with molybdenum and their photoelectrochemical behavior for water photooxidation have been addressed in the quest for improved electrodes for water splitting. The hematite nanorods were synthesized through chemical bath deposition, and Mo was added by following two variants of a drop-casting method based on ammonium heptamolybdate solutions. FE-SEM, TEM, XRD, and XPS were employed for electrode structural and morphological characterization. The reported results reveal that the impregnation method does not cause significant changes in the hematite structure and nanorod morphology. Importantly, the modification with Mo triggers a significant improvement in the photoactivity of the electrodes, obtaining a photocurrent increase of up to 43x. A specific Mott-Schottky analysis applicable to nanostructured electrodes was performed, revealing that the modification with Mo leads to an increase in electron concentration and to a shift of the flat band potential toward more positive values. A second role of Mo as a passivating agent needs to be invoked to explain the experimental observations. It is worth noting that this modification method allows precise control of the amount of Mo contained in the samples while maintaining the morphology of the electrode.
引用
收藏
页码:585 / 593
页数:9
相关论文
共 50 条
  • [41] Nanostructured hematite photoelectrochemical electrodes prepared by the low temperature thermal oxidation of iron
    Hiralal, Pritesh
    Saremi-Yarahmadi, Sina
    Bayer, Bernhard C.
    Wang, Haolan
    Hofmann, Stephan
    Wijayantha, K. G. Upul
    Amaratunga, Gehan A. J.
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2011, 95 (07) : 1819 - 1825
  • [42] Hierarchical ZnO nanorod electrodes: Effect of post annealing on structural and photoelectrochemical performance
    Bhatti, Ijaz Ahmad
    Peiris, T. A. Nirmal
    Smith, Thomas D.
    Wijayantha, K. G. Upul
    MATERIALS LETTERS, 2013, 93 : 333 - 336
  • [43] Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes
    Guler, Ali Can
    Antos, Jan
    Masar, Milan
    Urbanek, Michal
    Machovsky, Michal
    Kuritka, Ivo
    NANOSCALE ADVANCES, 2023, 5 (11): : 3091 - 3103
  • [44] Preparation of polypyrrole modified molybdenum trioxide nanorod and their applications in supercapacitors
    Liu, Yian
    Ji, Xu
    Sun, Huanyin
    Lin, Xiao
    MATERIALS TECHNOLOGY, 2022, 37 (11) : 1947 - 1953
  • [45] Electrochemical studies on the oxidation of nitric oxide (NO) at glassy carbon electrodes modified by molybdenum oxides
    Kosminsky, L
    Mori, V
    Bertotti, M
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2001, 499 (01): : 176 - 181
  • [46] Ultra-efficient and durable photoelectrochemical water oxidation using elaborately designed hematite nanorod arrays
    Jeon, Tae Hwa
    Moon, Gun-hee
    Park, Hyunwoong
    Choi, Wonyong
    NANO ENERGY, 2017, 39 : 211 - 218
  • [47] Precise control of TiO2 overlayer on hematite nanorod arrays by ALD for the photoelectrochemical water splitting
    Wang, Jiao
    Liccardo, Letizia
    Habibimarkani, Heydar
    Wierzbicka, Ewa
    Schultz, Thorsten
    Koch, Norbert
    Moretti, Elisa
    Pinna, Nicola
    SUSTAINABLE ENERGY & FUELS, 2024, 8 (16): : 3753 - 3763
  • [48] Controlled growth of vertically oriented hematite/Pt composite nanorod arrays: use for photoelectrochemical water splitting
    Mao, Aiming
    Park, Nam-Gyu
    Han, Gui Young
    Park, Jong Hyeok
    NANOTECHNOLOGY, 2011, 22 (17)
  • [49] Hematite nanorod arrays top-decorated with an MIL-101 layer for photoelectrochemical water oxidation
    Wang, Huali
    He, Xuan
    Li, Weixin
    Chen, Hui
    Fang, Wei
    Tian, Pan
    Xiao, Feng
    Zhao, Lei
    CHEMICAL COMMUNICATIONS, 2019, 55 (76) : 11382 - 11385
  • [50] PHOTOELECTROCHEMICAL STUDIES ON P-SNSE ELECTRODES
    SHARON, M
    BASAVASWARAN, K
    SOLAR CELLS, 1987, 20 (04): : 323 - 332