Hydrogen generation from photoelectrochemical water splitting based on nanomaterials

被引:261
|
作者
Li, Yat [1 ]
Zhang, Jin Zhong [1 ]
机构
[1] Univ Calif Santa Cruz, Dept Chem & Biochem, Santa Cruz, CA 95064 USA
关键词
Hydrogen; photoelectrochemistry; nanomaterials; water splitting; PEC; THIN-FILM ELECTRODES; PLANE-WAVE METHOD; VISIBLE-LIGHT; DOPED TIO2; SOLAR-ENERGY; NANOSTRUCTURED HEMATITE; PHOTOCATALYTIC ACTIVITY; STRUCTURAL-PROPERTIES; NANOWIRE ARRAYS; NANOTUBE ARRAYS;
D O I
10.1002/lpor.200910025
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Hydrogen is potentially one of the most attractive and environmentally friendly fuels for energy applications. Safe and efficient generation, storage, and utilization of hydrogen present major challenges in its widespread use. Hydrogen generation from water splitting represents a holy grail in energy science and technology, as water is the most abundant hydrogen source on the Earth. Among different methods, hydrogen generation from photoelectrochemical (PEC) water splitting using semiconductors as photoelectrodes is one of the most scalable and cost-effective approaches. Compared to bulk materials, nanostructured semiconductors offer potential advantages in PEC application due to their large surface area and size-dependent properties, such as increased absorption coefficient, increased band-gap energy, and reduced carrier-scattering rate. This article provides a brief overview of some recent research activities in the area of hydrogen generation from PEC water splitting based on nanostructured semiconductor materials, with a particular emphasis on metal oxides. Both scientific and technical issues are critically analyzed and reviewed. [GRAPHICS] SEM image of ZnO nanowire array on ITO substrate (left) and linear sweep voltammograms from undoped ZnO nanowires in the dark, undoped ZnO nanowires and N-doped ZnO nanowires at 100 mW/cm(2). (C) 2010 by WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
引用
收藏
页码:517 / 528
页数:12
相关论文
共 50 条
  • [1] Metal oxide nanomaterials for solar hydrogen generation from photoelectrochemical water splitting
    Zhang, Jin Zhong
    [J]. MRS BULLETIN, 2011, 36 (01) : 48 - 55
  • [2] Metal oxide nanomaterials for solar hydrogen generation from photoelectrochemical water splitting
    Jin Zhong Zhang
    [J]. MRS Bulletin, 2011, 36 : 48 - 55
  • [3] Photoelectrochemical water splitting for hydrogen generation
    Sebastian, PJ
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2001, 26 (02) : 115 - 115
  • [4] Photoelectrode nanomaterials for photoelectrochemical water splitting
    Eftekhari, Ali
    Babu, Veluru Jagadeesh
    Ramakrishna, Seeram
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (16) : 11078 - 11109
  • [5] Nanomaterials for photoelectrochemical water splitting - review
    Joy, Josny
    Mathew, Jinu
    George, Soney C.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (10) : 4804 - 4817
  • [6] Photoelectrochemical Water Splitting by Using Nanomaterials: A Review
    Aslam, Sidra
    Awais, Muhammad
    Ahmed, Sohail
    Safdar, Muhammad
    Buksh, Asia Allah
    Haroone, Muhammad Sohail
    [J]. JOURNAL OF ELECTRONIC MATERIALS, 2024, 53 (01) : 1 - 15
  • [7] Photoelectrochemical Water Splitting by Using Nanomaterials: A Review
    Sidra Aslam
    Muhammad Awais
    Sohail Ahmed
    Muhammad Safdar
    Asia Allah Buksh
    Muhammad Sohail Haroone
    [J]. Journal of Electronic Materials, 2024, 53 : 1 - 15
  • [8] Photoelectrochemical Study of Nanostructured ZnO Thin Films for Hydrogen Generation from Water Splitting
    Wolcott, Abraham
    Smith, Wilson A.
    Kuykendall, Tevye R.
    Zhao, Yiping
    Zhang, Jin Z.
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2009, 19 (12) : 1849 - 1856
  • [9] Recent Advances in Bismuth-Based Nanomaterials for Photoelectrochemical Water Splitting
    Bhat, Swetha S. M.
    Jang, Ho Won
    [J]. CHEMSUSCHEM, 2017, 10 (15) : 3001 - 3018
  • [10] Quantum Dots-Based Photoelectrochemical Hydrogen Evolution from Water Splitting
    Jin, Lei
    Zhao, Haiguang
    Wang, Zhiming M.
    Rosei, Federico
    [J]. ADVANCED ENERGY MATERIALS, 2021, 11 (12)