Tailoring the surface functionalities of titania nanotube arrays.
暂无分享,去创建一个
Krishna Kant | Dusan Losic | Andrew Michelmore | Krasimir Vasilev | A. Michelmore | D. Losic | K. Vasilev | K. Kant | Zihan Poh | Joseph Chan | Zihan Poh | Joseph Chan
[1] Andrei Ghicov,et al. Self-ordering electrochemistry: a review on growth and functionality of TiO2 nanotubes and other self-aligned MO(x) structures. , 2009, Chemical communications.
[2] T. C. Downie,et al. A Study of the Formation and Dissolution of Porous Anodic Oxide Films on Aluminum: Behavior of the Porous Layer , 1969 .
[3] W. Knoll,et al. Fluorescence intensities of chromophores in front of a thin metal film. , 2004, The Journal of chemical physics.
[4] Kouji Yasuda,et al. TiO2 nanotubes: Self-organized electrochemical formation, properties and applications , 2007 .
[5] T. Desai,et al. Fabrication of mechanically robust, large area, polycrystalline nanotubular/porous TiO2 membranes , 2008 .
[6] Dusan Losic,et al. Nanoporous anodic aluminium oxide membranes with layered surface chemistry. , 2009, Chemical communications.
[7] Marc Aucouturier,et al. Structure and physicochemistry of anodic oxide films on titanium and TA6V alloy , 1999 .
[8] Sungho Jin,et al. Growth of nano-scale hydroxyapatite using chemically treated titanium oxide nanotubes. , 2005, Biomaterials.
[9] T. Gengenbach,et al. Characterization of low-fouling ethylene glycol containing plasma polymer films. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[10] Helmut Thissen,et al. Ultrasensitive probing of the protein resistance of PEG surfaces by secondary ion mass spectrometry. , 2002, Biomaterials.
[11] Sungho Jin,et al. Enhanced cellular mobility guided by TiO2 nanotube surfaces. , 2008, Nano letters.
[12] Katharina Gaus,et al. Modifying Porous Silicon with Self‐Assembled Monolayers for Biomedical Applications: The Influence of Surface Coverage on Stability and Biomolecule Coupling , 2008 .
[13] Dusan Losic,et al. Self-ordered nanopore and nanotube platforms for drug delivery applications , 2009, Expert opinion on drug delivery.
[14] Dusan Losic,et al. Porous alumina with shaped pore geometries and complex pore architectures fabricated by cyclic anodization. , 2009, Small.
[15] J. Macák,et al. TiO2 nanotubes: photocatalyst for cancer cell killing , 2008 .
[16] Tejal A Desai,et al. Decreased Staphylococcus epidermis adhesion and increased osteoblast functionality on antibiotic-loaded titania nanotubes. , 2007, Biomaterials.
[17] Sungho Jin,et al. Stem cell fate dictated solely by altered nanotube dimension , 2009, Proceedings of the National Academy of Sciences.
[18] Craig A. Grimes,et al. Poly (ethylene glycol) grafted nanoporous alumina membranes , 2004 .
[19] M. McKee,et al. Chemical modification of titanium surfaces for covalent attachment of biological molecules. , 1998, Journal of biomedical materials research.
[20] N. Voelcker,et al. Fabrication of gold nanorod arrays by templating from porous alumina , 2005, Nanotechnology.
[21] T. Groth,et al. Surface properties of and cell adhesion onto allylamine-plasma-coated polyethylenterephtalat membranes. , 2003, Biomaterials.
[22] Andrei Ghicov,et al. Self‐Ordering Electrochemistry: A Review on Growth and Functionality of TiO2 Nanotubes and Other Self‐Aligned MOx Structures , 2009 .
[23] Craig A. Grimes,et al. A review on highly ordered, vertically oriented TiO2 nanotube arrays: Fabrication, material properties, and solar energy applications , 2006 .
[24] P. Highfield,et al. Surface Gradient of Functional Heparin , 2008 .
[25] Tejal A Desai,et al. Influence of engineered titania nanotubular surfaces on bone cells. , 2007, Biomaterials.
[26] J. Eaton,et al. Biocompatibility of sulphonated polyurethane surfaces. , 1996, Biomaterials.
[27] Y. Ito,et al. Synthesis and nonthrombogenicity of polyetherurethaneurea film grafted with poly(sodium vinyl sulfonate). , 1991, Journal of biomedical materials research.
[28] N. Huang,et al. Hemocompatibility of titanium oxide films. , 2003, Biomaterials.
[29] S. Bauer,et al. Amphiphilic TiO2 nanotube arrays: an actively controllable drug delivery system. , 2009, Journal of the American Chemical Society.
[30] K. S. Siow,et al. Plasma Methods for the Generation of Chemically Reactive Surfaces for Biomolecule Immobilization and Cell Colonization ‐ A Review , 2006 .
[31] A S Hoffman,et al. Protein adsorption to poly(ethylene oxide) surfaces. , 1991, Journal of biomedical materials research.
[32] Gero Decher,et al. Fuzzy Nanoassemblies: Toward Layered Polymeric Multicomposites , 1997 .
[33] T. Desai,et al. Long-term small molecule and protein elution from TiO2 nanotubes. , 2009, Nano letters.
[34] Benjamin Thierry,et al. Reactive epoxy-functionalized thin films by a pulsed plasma polymerization process. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[35] Tejal A Desai,et al. Peptide-immobilized nanoporous alumina membranes for enhanced osteoblast adhesion. , 2005, Biomaterials.
[36] Emeka Nkenke,et al. In vivo evaluation of anodic TiO2 nanotubes: an experimental study in the pig. , 2009, Journal of biomedical materials research. Part B, Applied biomaterials.
[37] W. Freeman,et al. Porous silicon in drug delivery devices and materials. , 2008, Advanced drug delivery reviews.
[38] D. Losic,et al. A simple approach for synthesis of TiO2 nanotubes with through‐hole morphology , 2009 .
[39] M. Yoshinari,et al. Influence of surface modifications to titanium on antibacterial activity in vitro. , 2001, Biomaterials.
[40] Tejal A Desai,et al. Titania nanotubes: a novel platform for drug-eluting coatings for medical implants? , 2007, Small.
[41] H. Griesser,et al. Small scale reactor for plasma processing of moving substrate web , 1989 .
[42] J. Macák,et al. Magnetically guided titania nanotubes for site-selective photocatalysis and drug release. , 2009, Angewandte Chemie.
[43] G. Schmid. Materials in nanoporous alumina , 2002 .
[44] Dusan Losic,et al. Surface modification of nanoporous alumina membranes by plasma polymerization , 2008, Nanotechnology.
[45] Craig A. Grimes,et al. Synthesis and application of highly ordered arrays of TiO2 nanotubes , 2007 .
[46] Helmut Thissen,et al. Effects of cloud-point grafting, chain length, and density of PEG layers on competitive adsorption of ocular proteins. , 2002, Biomaterials.
[47] Tejal A Desai,et al. The effect of TiO2 nanotubes on endothelial function and smooth muscle proliferation. , 2009, Biomaterials.
[48] Andrew L. Hook,et al. Comparison of the binding mode of plasmid DNA to allylamine plasma polymer and poly(ethylene glycol) surfaces , 2008 .
[49] Craig A. Grimes,et al. A new benchmark for TiO2 nanotube array growth by anodization , 2007 .
[50] R. Short,et al. Tailored plasmas for applications in the surface treatment of materials , 2003 .
[51] Jimmy Xu,et al. Nanometric superlattices: non-lithographic fabrication, materials, and prospects , 2004 .
[52] T. Desai,et al. Controlling Nonspecific Protein Interactions in Silicon Biomicrosystems with Nanostructured Poly(ethylene glycol) Films , 2002 .
[53] Eugeniu Balaur,et al. Tailoring the wettability of TiO2 nanotube layers , 2005 .
[54] Patrik Schmuki,et al. TiO2 nanotube surfaces: 15 nm--an optimal length scale of surface topography for cell adhesion and differentiation. , 2009, Small.
[55] Marion Frant,et al. The effect of positively charged plasma polymerization on initial osteoblastic focal adhesion on titanium surfaces. , 2007, Biomaterials.