311
88. Hinds, B., 2012. Dramatic transport properties of carbon nanotube membranes for a robust
protein channel mimetic platform. Current Opinion in Solid State & Materials Science 16 (1),
1-9.
89. Mauter, M.S., Elimelech, M., Osuji, C.O., 2010. Nanocomposites of vertically aligned single-walled carbon nanotubes by magnetic alignment and polymerization of a lyotropic precursor. Acs Nano 4 (11), 6651-6658.
90. Elimelech, M., Phillip, W.A., 2011. The future of seawater desalination: energy, technology,
and the environment. Science 333 (6043), 712-717.
91. Ge, Q.C., Su, J.C., Chung, T.S., Amy, G., 2011. Hydrophilic superparamagnetic nanoparticles: synthesis, characterization, and performance in forward osmosis processes. Industrial
& Engineering Chemistry Research 50 (1), 382-388.
92. Fujishima, A., Zhang, X., Tryk, D.A., 2008. TiO 2 photocatalysis and related surface phenomena. Surf. Sci. Rep. 63, 515-582.
93. Zhang, H.Z., Banfield, J.F., 2000. Understanding polymorphic phase transformation behavior during growth of nanocrystalline aggregates: insights from TiO 2 . Journal of Physical
Chemistry B 104 (15), 3481-3487.
94. Zhang, Z.B., Wang, C.C., Zakaria, R., Ying, J.Y., 1998. Role of particle size in nanocrystalline TiO2-based photocatalysts. Journal of Physical Chemistry B 102 (52), 10871-10878.
95. Macak, J.M., Zlamal, M., Krysa, J., Schmuki, P., 2007. Self-organized TiO 2 nanotube layers
as highly efficient photocatalysts. Small 3 (2), 300-304.
96. Ni, M., Leung, M.K.H., Leung, D.Y.C., Sumathy, K., 2007. A review and recent developments in photocatalytic water-splitting using TiO 2 for hydrogen production. Renew. Sust.
Energy Rev. 11, 401-425.
97. Han, X.G., Kuang, Q., Jin, M.S., Xie, Z.X., Zheng, L.S., 2009. Synthesis of titania nanosheets
with a high percentage of exposed (001) facets and related photocatalytic properties. Journal
of the American Chemical Society 131 (9), 3152.
98. Murakami, N., Kurihara, Y., Tsubota, T., Ohno, T., 2009. Shape controlled anatase
titanium(IV) oxide particles prepared by hydrothermal treatment of peroxo titanic acid in the
presence of polyvinyl alcohol. Journal of Physical Chemistry C 113 (8), 3062-3069.
99. Liu, S.W., Yu, J.G., Jaroniec, M., 2011b. Anatase TiO(2) with dominant high-energy {001}
facets: synthesis, properties, and applications. Chemistry of Materials 23 (18), 4085-4093.
100. Ni, M., Leung, M.K.H., Leung, D.Y.C., Sumathy, K., 2007. A review and recent developments in photocatalytic water-splitting using TiO 2 for hydrogen production. Renewable &
Sustainable Energy Reviews 11 (3), 401-425.
101. Kitano, M., Funatsu, K., Matsuoka, M., Ueshima, M., Anpo, M., 2006. Preparation of nitrogen-substituted TiO(2) thin film photocatalysts by the radio frequency magnetron sputtering
deposition method and their photocatalytic reactivity under visible light irradiation. Journal
of Physical Chemistry B 110 (50), 25266-25272.
102. Kominami, H., Yabutani, K., Yamamoto, T., Kara, Y., Ohtani, B., 2001. Synthesis of highly
active tungsten(VI) oxide photocatalysts for oxygen evolution by hydrothermal treatment of
aqueous tungstic acid solutions. Journal of Materials Chemistry 11 (12), 3222-3227.
103. Lee, J., Mackeyev, Y., Cho, M., Wilson, L.J., Kim, J.H., Alvarez, P.J.J., 2010. C(60) aminofullerene immobilized on silica as a visible light-activated photocatalyst. Environmental
Science and Technology 44 (24), 9488-9495.
104. Lof, R., Van Veenendaal, M., Jonkman, H., Sawatzky, G., 1995. Band gap, excitons and
Coulomb interactions of solid C 60. Journal of Electron Spectroscopy and Related Phenomena
72, 83-87.
105. Brunet, L., Lyon, D.Y., Hotze, E.M., Alvarez, P.J.J., Wiesner, M.R., 2009. Comparative photoactivity and antibacterial properties of C-60 fullerenes and titanium dioxide nanoparticles.
Environmental Science and Technology 43 (12), 4355-4360.
106. Chong, M.N., Jin, B., Chow, C.W.K., Saint, C., 2010. Recent developments in photocatalytic
water treatment technology: a review. Water Research 44 (10), 2997-3027.
References
88. Hinds, B., 2012. Dramatic transport properties of carbon nanotube membranes for a robust
protein channel mimetic platform. Current Opinion in Solid State & Materials Science 16 (1),
1-9.
89. Mauter, M.S., Elimelech, M., Osuji, C.O., 2010. Nanocomposites of vertically aligned single-walled carbon nanotubes by magnetic alignment and polymerization of a lyotropic precursor. Acs Nano 4 (11), 6651-6658.
90. Elimelech, M., Phillip, W.A., 2011. The future of seawater desalination: energy, technology,
and the environment. Science 333 (6043), 712-717.
91. Ge, Q.C., Su, J.C., Chung, T.S., Amy, G., 2011. Hydrophilic superparamagnetic nanoparticles: synthesis, characterization, and performance in forward osmosis processes. Industrial
& Engineering Chemistry Research 50 (1), 382-388.
92. Fujishima, A., Zhang, X., Tryk, D.A., 2008. TiO 2 photocatalysis and related surface phenomena. Surf. Sci. Rep. 63, 515-582.
93. Zhang, H.Z., Banfield, J.F., 2000. Understanding polymorphic phase transformation behavior during growth of nanocrystalline aggregates: insights from TiO 2 . Journal of Physical
Chemistry B 104 (15), 3481-3487.
94. Zhang, Z.B., Wang, C.C., Zakaria, R., Ying, J.Y., 1998. Role of particle size in nanocrystalline TiO2-based photocatalysts. Journal of Physical Chemistry B 102 (52), 10871-10878.
95. Macak, J.M., Zlamal, M., Krysa, J., Schmuki, P., 2007. Self-organized TiO 2 nanotube layers
as highly efficient photocatalysts. Small 3 (2), 300-304.
96. Ni, M., Leung, M.K.H., Leung, D.Y.C., Sumathy, K., 2007. A review and recent developments in photocatalytic water-splitting using TiO 2 for hydrogen production. Renew. Sust.
Energy Rev. 11, 401-425.
97. Han, X.G., Kuang, Q., Jin, M.S., Xie, Z.X., Zheng, L.S., 2009. Synthesis of titania nanosheets
with a high percentage of exposed (001) facets and related photocatalytic properties. Journal
of the American Chemical Society 131 (9), 3152.
98. Murakami, N., Kurihara, Y., Tsubota, T., Ohno, T., 2009. Shape controlled anatase
titanium(IV) oxide particles prepared by hydrothermal treatment of peroxo titanic acid in the
presence of polyvinyl alcohol. Journal of Physical Chemistry C 113 (8), 3062-3069.
99. Liu, S.W., Yu, J.G., Jaroniec, M., 2011b. Anatase TiO(2) with dominant high-energy {001}
facets: synthesis, properties, and applications. Chemistry of Materials 23 (18), 4085-4093.
100. Ni, M., Leung, M.K.H., Leung, D.Y.C., Sumathy, K., 2007. A review and recent developments in photocatalytic water-splitting using TiO 2 for hydrogen production. Renewable &
Sustainable Energy Reviews 11 (3), 401-425.
101. Kitano, M., Funatsu, K., Matsuoka, M., Ueshima, M., Anpo, M., 2006. Preparation of nitrogen-substituted TiO(2) thin film photocatalysts by the radio frequency magnetron sputtering
deposition method and their photocatalytic reactivity under visible light irradiation. Journal
of Physical Chemistry B 110 (50), 25266-25272.
102. Kominami, H., Yabutani, K., Yamamoto, T., Kara, Y., Ohtani, B., 2001. Synthesis of highly
active tungsten(VI) oxide photocatalysts for oxygen evolution by hydrothermal treatment of
aqueous tungstic acid solutions. Journal of Materials Chemistry 11 (12), 3222-3227.
103. Lee, J., Mackeyev, Y., Cho, M., Wilson, L.J., Kim, J.H., Alvarez, P.J.J., 2010. C(60) aminofullerene immobilized on silica as a visible light-activated photocatalyst. Environmental
Science and Technology 44 (24), 9488-9495.
104. Lof, R., Van Veenendaal, M., Jonkman, H., Sawatzky, G., 1995. Band gap, excitons and
Coulomb interactions of solid C 60. Journal of Electron Spectroscopy and Related Phenomena
72, 83-87.
105. Brunet, L., Lyon, D.Y., Hotze, E.M., Alvarez, P.J.J., Wiesner, M.R., 2009. Comparative photoactivity and antibacterial properties of C-60 fullerenes and titanium dioxide nanoparticles.
Environmental Science and Technology 43 (12), 4355-4360.
106. Chong, M.N., Jin, B., Chow, C.W.K., Saint, C., 2010. Recent developments in photocatalytic
water treatment technology: a review. Water Research 44 (10), 2997-3027.
References
