Nanoporous anodic alumina obtained without protective oxide layer by hard anodization

被引:32
|
作者
Santos, A. [1 ]
Formentin, P. [1 ]
Ferre-Borrull, J. [1 ]
Pallares, J. [1 ]
Marsal, L. F. [1 ]
机构
[1] Univ Rovira & Virgili, Dept Engn Elect Elect & Automat, Tarragona 43007, Spain
关键词
Hard anodization; Porous alumina; Protective oxide layer; Pore opening; Membrane detach; POROUS ALUMINA; FABRICATION; MEMBRANES; ARRAYS; PORES; FILMS;
D O I
10.1016/j.matlet.2011.09.101
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this study, a fast and cost-effective approach is applied for fabricating nanoporous anodic alumina membranes under hard conditions without a protective oxide layer. This structural characteristic is a result of using a two-step anodization strategy under specific hard conditions during the second anodization step (i.e. high stirring rate, low acid electrolyte temperature and concentration). Notice that, after the anodization process, the membrane is detached from the aluminium substrate at the same time that pores are opened. So, after the fabrication process, no additional stages are required for removing both the protective oxide layer and the oxide barrier layer from the top and the bottom of the membrane, respectively. The resulting nanostructures obtained by this approach are defect-free nanoporous anodic alumina membranes with well-defined pores from the top to the bottom. This makes it possible to directly use those membranes in later applications (e.g. templates for replicating nanostructures, filters, optoelectronic devices and so forth) without additional processes and costs. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:296 / 299
页数:4
相关论文
共 50 条
  • [31] Light-Confining Nanoporous Anodic Alumina Microcavities by Apodized Stepwise Pulse Anodization
    Law, Cheryl Suwen
    Lim, Siew Yee
    Macalincag, Raeanne M.
    Abell, Andrew D.
    Santos, Abel
    ACS APPLIED NANO MATERIALS, 2018, 1 (09): : 4418 - 4434
  • [32] Fast fabrication of porous anodic aluminum oxide template by hard anodization
    Sun Xiao-Xia
    Huang Ping
    Liang Jan
    Zhao Jun-Fu
    Xu Bing-She
    CHINESE JOURNAL OF INORGANIC CHEMISTRY, 2008, 24 (09) : 1546 - 1550
  • [33] Nanoporous hard data: optical encoding of information within nanoporous anodic alumina photonic crystals
    Santos, Abel
    Law, Cheryl Suwen
    Pereira, Taj
    Losic, Dusan
    NANOSCALE, 2016, 8 (15) : 8091 - 8100
  • [34] Structural Engineering of Nanoporous Anodic Alumina Photonic Crystals by Sawtooth-like Pulse Anodization
    Law, Cheryl Suwen
    Santos, Abel
    Nemati, Mandieh
    Losic, Dusan
    ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (21) : 13542 - 13554
  • [35] Photoluminescence of nanoporous oxide aluminium obtained by hard anodizing
    Zejnidenov, A. K.
    Ospanova, Zh. Zh.
    Tenchurina, A. R.
    Savel'yeva, N. A.
    BULLETIN OF THE UNIVERSITY OF KARAGANDA-PHYSICS, 2013, 3 (71): : 28 - 33
  • [36] Nanoporous anodic alumina oxide layer and its sealing for the enhancement of radiative heat dissipation of aluminum alloy
    Lee, Junghoon
    Kim, Donghyun
    Choi, Chang-Hwan
    Chung, Wonsub
    NANO ENERGY, 2017, 31 : 504 - 513
  • [37] Fabrication of novel porous anodic alumina membranes by two-step hard anodization
    Li, Y.
    Ling, Z. Y.
    Chen, S. S.
    Cwang, J.
    NANOTECHNOLOGY, 2008, 19 (22)
  • [38] Quantitative Analysis of Nanoporous Anodic Alumina Ordering Obtained at Different Anodizing Potentials
    Maria Aguilar-Sierra, Sara
    Echeverria, Felix
    INGENIERIA, 2021, 26 (01): : 15 - 24
  • [39] Anodic alumina oxide surfaces prepared by dual hard and mild anodization at subzero temperature: Surface microscopic characterization and influence on wettability
    Feschet-Chassot, Emmanuelle
    Chennell, Philip
    Cueff, Regis
    Mailhot-Jensen, Benedicte
    Sautou, Valerie
    SURFACES AND INTERFACES, 2020, 19
  • [40] The theory of galvanoluminescence in the anodic oxide films obtained by aluminum anodization in ammonium tartrate
    Belca, ID
    Zekovic, LD
    Jovanic, B
    Ristovski, G
    Ristovski, L
    ELECTROCHIMICA ACTA, 2000, 45 (24) : 4059 - 4063