Electrodeposition of cuprous oxide on a porous copper framework for an improved photoelectrochemical performance

被引:11
|
作者
Kurniawan, Mario [1 ]
Stich, Michael [1 ]
Marimon, Mayra [1 ]
Camargo, Magali [1 ,3 ]
Peipmann, Ralf [1 ]
Hannappel, Thomas [2 ]
Bund, Andreas [1 ]
机构
[1] Tech Univ Ilmenau, Electrochem & Electroplating Grp, Gustav Kirchhoff Str 6, D-98693 Ilmenau, Germany
[2] Tech Univ Ilmenau, Fundamentals Energy Mat Grp, Gustav Kirchhoff Str 5, D-98693 Ilmenau, Germany
[3] Pontificia Univ Catolica Peru, Secc Quim, Inst Corros & Protecc, Dept Ciencias, Ave Univ 1801, Lima 32, Peru
关键词
D O I
10.1007/s10853-021-06058-y
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Photoelectrochemical (PEC) water splitting can be an efficient and economically feasible alternative for hydrogen production if easily processed photoelectrodes made of inexpensive and abundant materials are employed. Here, we present the preparation of porous Cu2O photocathodes with good PEC performance using solely inexpensive electrodeposition methods. Firstly, porous Cu structures with delicate pore networks were deposited on flat Cu substrates employing hydrogen-bubble-assisted Cu deposition. In a second electrodeposition step, the porous Cu structures were mechanically reinforced and subsequently detached from the substrates to obtain free-standing porous frameworks. In a third and final step, photoactive Cu2O films were electrode-posited. The PEC water splitting performance in 0.5 M Na2SO4 (pH similar to 6) shows that these photocathodes have photocurrents of up to -2.25 mA cm(-2) at 0 V versus RHE while maintaining a low dark current. In contrast, the Cu2O deposited on a flat Cu sample showed photocurrents only up to -1.25 mA cm(-2). This performance increase results from the significantly higher reactive surface area while maintaining a thin and homogeneous Cu2O layer with small grain sizes and therefore higher hole concentrations as determined by Mott-Schottky analysis. The free-standing porous Cu2O samples show a direct optical transmittance of 23% (lambda = 400-800 nm) and can therefore be used in tandem structures with a photoanode in full PEC cells.
引用
收藏
页码:11866 / 11880
页数:15
相关论文
共 50 条
  • [41] Effect of Electrodeposition Methods of Cuprous Oxide on Antibacterial Properties of Concrete
    Xu, Yi
    Xu, Ning
    Guo, Mingzhi
    Luo, Jie
    Li, Yi
    Chu, Hongqiang
    Zeng, Youxu
    Jiang, Linhua
    JOURNAL OF WUHAN UNIVERSITY OF TECHNOLOGY-MATERIALS SCIENCE EDITION, 2023, 38 (04): : 823 - 833
  • [42] Effect of pH on the electrodeposition nucleation and growth mechanism of cuprous oxide
    Min, Changli
    Li, Shina
    Shi, Zhuonan
    Xie, Junjie
    Ma, Ruixin
    JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2023, 27 (05) : 1085 - 1093
  • [43] Effect of Electrodeposition Methods of Cuprous Oxide on Antibacterial Properties of Concrete
    徐怡
    XU Ning
    GUO Mingzhi
    LUO Jie
    LI Yi
    储洪强
    ZENG Youxu
    JIANG Linhua
    JournalofWuhanUniversityofTechnology(MaterialsScience), 2023, 38 (04) : 823 - 833
  • [44] Potentiostatic electrodeposition of cuprous oxide thin films for photovoltaic applications
    Septina, Wilman
    Ikeda, Shigeru
    Khan, M. Alam
    Hirai, Takeshi
    Harada, Takashi
    Matsumura, Michio
    Peter, Laurence M.
    ELECTROCHIMICA ACTA, 2011, 56 (13) : 4882 - 4888
  • [45] Study of annealing effects of cuprous oxide grown by electrodeposition technique
    Siripala, W
    Perera, LDRD
    DeSilva, KTL
    Jayanetti, JKDS
    Dharmadasa, IM
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 1996, 44 (03) : 251 - 260
  • [46] Mechanism for the Formation of Cuprous Oxide Nanowires in AAO template by Electrodeposition
    Khan, Babar Shazad
    Saeed, Adnan
    Hayat, Sardar Sikandar
    Mukhtar, Aiman
    Mehmood, Tahir
    INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE, 2017, 12 (02): : 890 - 897
  • [47] Templated Electrodeposition and Photocatalytic Activity of Cuprous Oxide Nanorod Arrays
    Haynes, Keith M.
    Perry, Collin M.
    Rivas, Marlene
    Golden, Teresa D.
    Bazan, Antony
    Quintana, Maria
    Nesterov, Vladimir N.
    Berhe, Seare A.
    Rodriguez, Juan
    Estrada, Walter
    Youngblood, W. Justin
    ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (01) : 830 - 837
  • [48] Effect of pH on the electrodeposition nucleation and growth mechanism of cuprous oxide
    Changli Min
    Shina Li
    Zhuonan Shi
    Junjie Xie
    Ruixin Ma
    Journal of Solid State Electrochemistry, 2023, 27 : 1085 - 1093
  • [49] Research progress on the improved performance of cuprous oxide photocatalyst and its enhancement mechanism
    Long, Dan
    Zhou, Junling
    Shi, Hongmin
    Wang, Guanran
    Li, Hongshuang
    Zhao, Biyi
    Li, Zhenyu
    Huagong Jinzhan/Chemical Industry and Engineering Progress, 2019, 38 (06): : 2756 - 2767
  • [50] Effect of Electrodeposition Methods of Cuprous Oxide on Antibacterial Properties of Concrete
    Yi Xu
    Ning Xu
    Mingzhi Guo
    Jie Luo
    Yi Li
    Hongqiang Chu
    Youxu Zeng
    Linhua Jiang
    Journal of Wuhan University of Technology-Mater. Sci. Ed., 2023, 38 : 823 - 833