Electrolyte Factors Influencing Separated Pore Growth of Anodic TiO2 Nanotube Arrays

被引:4
作者
Yoriya, Sorachon [1 ]
Chumphu, Angkana [1 ]
机构
[1] Natl Met & Mat Technol Ctr, 114 Thailand Sci Pk,Pahonyothin Rd,Khlong 1, Khlong Luang 12120, PathumThani, Thailand
关键词
TiO2 nanotube arrays; electrochemical anodization; tube separation; electrolyte conductivity; OXIDE-FILMS; TITANIUM; FABRICATION; ANODIZATION;
D O I
10.20964/2016.11.69
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
This work presents an investigation of electrolyte properties in relation to the growth of TiO2 nanotube array films, particularly concerning the measurement of conductivity in the diethylene glycol hydrofluoric -water electrolyte system. The work aims to elucidate the behavior of ions in the anodized electrolytes with a better insight into the relation between molar conductivity and concentration of the additives. Differing solvation of the fluoride ion in various composition of water in the DEG-H2O mixture is attributed to the major factor determining the capability of proton transfer, controlling the ionic mobilities and the molar conductivities. Applying the feature of the two-factorial experiment has demonstrated a clear interaction of electrolyte parameters and titanium concentration dissolving into the electrolyte, which is believed to be a combination effect on pore widening and separating of nanotubes. A proposed schematic drawing has been demonstrated, summarizing how the nanotube arrays are constructed as a consequence of varying electrolyte type and composition.
引用
收藏
页码:9088 / 9099
页数:12
相关论文
共 46 条
[31]   Osteogenic differentiation of marrow stromal cells cultured on nanoporous alumina surfaces [J].
Popat, Ketul C. ;
Chatvanichkul, Kwan-Isara ;
Barnes, George L. ;
Latempa, Thomas Joseph, Jr. ;
Grimes, Craigs A. ;
Desai, Tejal A. .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2007, 80A (04) :955-964
[32]   A new benchmark for TiO2 nanotube array growth by anodization [J].
Prakasam, Haripriya E. ;
Shankar, Karthik ;
Paulose, Maggie ;
Varghese, Oomman K. ;
Grimes, Craig A. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2007, 111 (20) :7235-7241
[33]   THE ANODIC-OXIDATION OF SUPERIMPOSED NIOBIUM AND TANTALUM LAYERS - THEORY [J].
PRINGLE, JPS .
ELECTROCHIMICA ACTA, 1980, 25 (11) :1403-1421
[34]   Formation of self-ordered nano-tubular structure of anodic oxide layer on titanium [J].
Raja, KS ;
Misra, M ;
Paramguru, K .
ELECTROCHIMICA ACTA, 2005, 51 (01) :154-165
[35]   Synthesis and applications of electrochemically self-assembled titania nanotube arrays [J].
Rani, Sanju ;
Roy, Somnath C. ;
Paulose, Maggie ;
Varghese, Oomman K. ;
Mor, Gopal K. ;
Kim, Sanghoon ;
Yoriya, Sorachon ;
LaTempa, Thomas J. ;
Grimes, C. A. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2010, 12 (12) :2780-2800
[36]   O-18 STUDY OF FIELD-ASSISTED PORE FORMATION IN COMPACT ANODIC OXIDE-FILMS ON ALUMINUM [J].
SIEJKA, J ;
ORTEGA, C .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1977, 124 (06) :883-891
[37]   Formation Mechanism of Porous Anodic Aluminium and Titanium Oxides [J].
Su, Zixue ;
Zhou, Wuzong .
ADVANCED MATERIALS, 2008, 20 (19) :3663-+
[38]   A rapid synthesis of TiO2 nanotubes in an ethylene glycol system by anodization as a Pt-based catalyst support for methanol electrooxidation [J].
Sui, Xu-Lei ;
Wang, Zhen-Bo ;
Xia, Yun-Fei ;
Yang, Min ;
Zhao, Lei ;
Gu, Da-Ming .
RSC ADVANCES, 2015, 5 (45) :35518-35523
[39]   POROUS ANODIC FILM FORMATION ON ALUMINUM [J].
THOMPSON, GE ;
WOOD, GC .
NATURE, 1981, 290 (5803) :230-232
[40]   Porous anodic alumina: Fabrication, characterization and applications [J].
Thompson, GE .
THIN SOLID FILMS, 1997, 297 (1-2) :192-201