|
[1]
|
Liu, K.S., Tian, Y. and Jiang, L. (2013) Bio-Inspired Superoleophobic and Smart Materials Design, Fabrication, and Application. Progress in Materials Science, 58, 503-564. [Google Scholar] [CrossRef]
|
|
[2]
|
Ahuja, A., Taylor, J.A., Lifton, V., Sidorenko, A.A., Salamon, T.R., Lobaton, E.J., et al. (2008) Nanonails: A Simple Geometrical Approach to Electrically Tunable Superlyophobic Surfaces. Langmuir, 24, 9-14.
[Google Scholar] [CrossRef] [PubMed]
|
|
[3]
|
Caputo, G., Cingolani, R., Cozzoli, P.D. and Athanassiou, A. (2009) Wettability Conversion of Colloidal TiO2 Nanocrystal Thin Films with UV-Switchable Hydrophilicity. Physical Chemistry Chemical Physics, 11, 3692-700.
[Google Scholar] [CrossRef] [PubMed]
|
|
[4]
|
Caputo, G., Nobile, C., Kipp, T., Blasi, L., Grillo, V., Carlino, E., et al. (2008) Reversible Wettability Changes in Colloidal TiO2 Nanorodthinfilm Coatings under Selective UV Laser Irradiation. Journal of Physical Chemistry C, 112, 701-714. [Google Scholar] [CrossRef]
|
|
[5]
|
Wang, D.A., Wang, X.L. and Liu, X.J.E. (2010) Engineering a Titanium Surface with Controllable Oleophobicity and Switchable Oil Adhesion. Journal of Physical Chemistry C, 114, 9938-9944. [Google Scholar] [CrossRef]
|
|
[6]
|
Zhang, M., Zhang, T. and Cui, T.H. (2011) Wettability Conversion from Superoleophobic to Superhydrophilic on Titania/Single-Walled Carbon Nanotube Composite Coatings. Langmuir, 27, 9295-9301.
[Google Scholar] [CrossRef] [PubMed]
|
|
[7]
|
Kim, T.I., Tahk, D. and Lee, H.H. (2009) Wettability-Controllable Super Water and Moderately Oil-Repellent Surface Fabricated by Wetchemical Etching. Langmuir, 25, 6576-6579. [Google Scholar] [CrossRef] [PubMed]
|
|
[8]
|
Du, C.G., Xia, F. and Jiang, L. (2010) Advancesin Bio-Inspired Smart Surfaces with Special Wettability. Chemical Journal of Chinese Universities, 31, 421-431.
|
|
[9]
|
孙伟. 基于纳米粒子的界面组装制备刺激响应性纳米薄膜[D]: [博士学位论文]. 上海: 复旦大学, 2014.
|
|
[10]
|
Yang, J., Zhang, Z.Z., Men, X.H., Xu, X.H., Zhu, X.T., Zhou, X.Y., et al. (2012) Rapid and Reversible Switching between Superoleophobicity and Superoleophilicity in Response to Counterion Exchange. Journal of Colloid and Interface Science, 366, 191-195. [Google Scholar] [CrossRef] [PubMed]
|
|
[11]
|
Grigoryev, A., Tokarev, I., Kornev, K.G., Luzinov, I. and Minko, S. (2012) Superomniphobic Magnetic Microtextures with Remote Wetting Control. Journal of American Chemical Society, 134, 12916-12919.
[Google Scholar] [CrossRef] [PubMed]
|
|
[12]
|
Zhu, X.T., Zhang, Z.Z., Xu, X.H., Men, X.H., Yang, J., Zhou, X.Y., et al. (2011) Rapid Control of Switchable Oil Wettability and Adhesion on the Copper Substrate. Langmuir, 27, 14508-14513. [Google Scholar] [CrossRef] [PubMed]
|
|
[13]
|
Chhatre, S.S., Choi, W., Tuteja, A., Park, K.C., Mabry, J.M., McKinley, G.H., et al. (2010) Scale Dependence of Omniphobic Mesh Surfaces. Langmuir, 26, 4027-4035. [Google Scholar] [CrossRef] [PubMed]
|
|
[14]
|
Liu, Y., Xiu, Y.H., Hess, D.W. and Wong, C.P. (2010) Silicon Surface Structure-Controlled Oleophobicity. Langmuir, 26, 8908-8913. [Google Scholar] [CrossRef] [PubMed]
|
|
[15]
|
Gnanappa, A.K., Papageorgiou, D.P., Gogolides, E., Tserepi, A., Papathanasiou, A.G. and Boudouvis, A.G. (2012) Hierarchical, Plasma Nanotextured, Robust Superamphiphobic Polymeric Surfaces Structurally Stabilized through a Wetting-Drying Cycle. Plasma Process and Polymers, 9, 304-315. [Google Scholar] [CrossRef]
|
|
[16]
|
Choi, W., Tuteja, A., Chhatre, S., Mabry, J.M., Cohen, R.E. and McKinley, G.H. (2009) Fabrics with Tunable Oleophobicity. Advanced Materials, 21, 2190-2195. [Google Scholar] [CrossRef]
|
|
[17]
|
Aulin, C., Netrval, J., Wagberg, L. and Lindstrom, T. (2010) Aerogels from Nanofibrillated Cellulose with Tunable Oleophobicity. Soft Matter, 6, 3298-3305. [Google Scholar] [CrossRef]
|