[1]
A.H. Heuer, D.J. Fink, V.J. Arias, P.D. Calvert, K. Kendali, G.L. Messing, J. Blackwell, P.C. Rieke, D.H. Thompson, A.P. Wheeler, A. Veis, A.I. Caplan, Science: Vol. 255, (1992), p.1098.
DOI: 10.1126/science.1546311
Google Scholar
[2]
C.E. Byrne, D.E. Nagle, Mat. Res. Innovat.: Vol. 1, (1997), p.137.
Google Scholar
[3]
P. Greil, J. Eur. Ceram. Soc.: Vol. 21, (2001), p.105.
Google Scholar
[4]
C.R. Rambo, J. Cao, H. Sieber, Mater. Chem. Phys.: Vol. 87, (2004), p.345.
Google Scholar
[5]
C.R. Rambo, J. Cao, O. Rusina, H. Sieber, Carbon: Vol. 43, (2005), p.1174.
Google Scholar
[6]
J. Cao, C.R. Rambo, H. Sieber, J. Porous Mater.: Vol. 11, (2004), p.163.
Google Scholar
[7]
T. Ota, M. Imaeda, H. Takase, M. Kobayashi, N. Kinoshita, T. Hirashita, H. Miyazaki, Y. Hikichi, J. Am. Ceram. Soc.: Vol. 83, (2000), p.1521.
DOI: 10.1111/j.1151-2916.2000.tb01421.x
Google Scholar
[8]
H. Sieber, C. Rambo, J. Cao, E. Vogli, P. Greil, Key Eng. Mater.: Vol. 206-213, (2002), p. (2009).
Google Scholar
[9]
M. Patel, B.K. Padhi, J. Mat. Sci. Lett.: Vol. 12, (1993), p.1234.
Google Scholar
[10]
P. Greil, T. Lifka, A. Kaindl, J. Eur. Ceram. Soc.: Vol. 18, (1998), p. (1961).
Google Scholar
[11]
E. Vogli, J. Mukerji, C. Hoffmann, R. Kladny, H. Sieber, P. Greil, J. Am. Cer. Soc.: Vol. 84 (2001) p.1236.
Google Scholar
[12]
H. Sieber, E. Vogli, F. Müller, P. Greil, N. Popovska, H. Gerhard, G. Emig, Key Eng. Mater.: Vol. 206-213, (2002), p. (2013).
DOI: 10.4028/www.scientific.net/kem.206-213.2013
Google Scholar
[13]
E. Vogli, H. Sieber, P. Greil, J. Eur. Ceram. Soc.: Vol. 22, (2002), p.2663.
Google Scholar
[14]
C.R. Rambo, J.M. Martinelli, Key Eng. Mat.: Vol. 189, (2001), p.9.
Google Scholar
[15]
T. Ota, M. Takahashi, T. Hibi, M. Ozawa, S. Suzuki ,Y. Hikichi, J. Am. Ceram. Soc.: Vol. 78 (1995), p.3409.
Google Scholar
[16]
M. W. Ackley, S.U. Rege, H. Saxena, Micropor. Mesopor. Mater.: Vol. 61, (2003), p.25.
Google Scholar
[17]
A.V. Rawtani, M.S. Rao, K.V.G.K. Gokhale, Ind. Eng. Chem.: Vol. 28, (1989), p.1411.
Google Scholar
[18]
H. Hamdan, M.N. Mohd Muhid, S. Endud, E. Listiorini, Z. Ramli, J. Non-Crystal Solids: Vol. 211, (1997), p.126.
DOI: 10.1016/s0022-3093(96)00611-4
Google Scholar
[19]
Z. Ramli, E. Listiorini, H. Hamdan, Jurnal Teknologi: Vol. 25, (1996), p.27.
Google Scholar
[20]
K.B. Pramod, M.S. Rao, K.V.G.K. Gokhale, Ind. Eng. Chem. Prod. Res. Dev.: Vol. 20, (1981), p.721.
Google Scholar
[21]
K. Kusakabe, T. Kuroda, A. Murata, S. Morooka, Ind. Eng. Chem. Res.: Vol. 36, (1997), p.649.
Google Scholar
[22]
M. Li, Y. Yeom, E. Weitz, Wolfgang M.H. Sachtler, J. Catalysis: Vol. 235, (2005), p.201.
Google Scholar
[23]
F. -C. Buciuman, B. Kraushaar-Czarnetzki, Catalysis Today: Vol. 69, (2001), p.337.
Google Scholar
[24]
F.C. Patcas, J. Catalysis: Vol. 231, (2005), p.194.
Google Scholar
[25]
N.W. Uhl, J. Dransfield, General Palmarum, A classification of palms based on the work of H.E. Moore Jr. Bailei (Hortorium and International Palm Society, Kansas, 1987).
Google Scholar
[26]
C.R. Rambo, H. Sieber, Adv. Mater.: Vol. 17, (2005), p.1088.
Google Scholar
[27]
C.R. Rambo, F.A. Mueller, L. Mueller, H. Sieber, I. Hofmann, P. Greil, Mater. Sci. Eng. C: Vol. 26, (2006), p.92.
Google Scholar
[28]
J. Cao, C.R. Rambo, H. Sieber, Ceram. Int.: Vol. 30, (2004), p. (1967).
Google Scholar
[29]
M. Scheffler, P. Greil, Adv. Eng. Mater.: Vol. 4, (2002), p.831.
Google Scholar
[30]
M. Scheffler, T. Gambaryan-Roisman, T. Takahashi, J. Kaschta, H. Muenstedt, P. Buhler, P. Greil, Ceram. Trans.: Vol. 108, (2001), p.239.
Google Scholar
[31]
C.R. Rambo, H. Sieber, J. Mater. Sci.: (2006) in press.
Google Scholar
[32]
A. Zampieri, S. Kullmann, T. Selvam, J. Bauer, W. Schwieger, H. Sieber, T. Fey, P. Greil, Micropor. Mesopor. Mater.: Vol. 90, (2006), p.162.
DOI: 10.1016/j.micromeso.2005.10.049
Google Scholar
[33]
Z. Ramli, H. Bahruji, Malaysian J. Chemistry: Vol. 5, (2003), p.48.
Google Scholar
[34]
R. Van Grieken, J.K. Sotelo, J.M. Menéndez, J.A. Melero, Micropor. Mesopor. Mater.: Vol. 39, (2000), p.135.
Google Scholar
[35]
J.G. Martinez, D.C. Amorós, A.L. Solano, Y.S. Lin. Micropor. Mesopor. Mater.: Vol. 42, (2001), p.255.
Google Scholar
[36]
L. Jonášová, F.A. Müller, H. Sieber, P. Greil, Bioceramics 16 in Key Eng. Mater.: Vol. 254-256, (2004), p.1013.
Google Scholar
[37]
J.S. Reed, Principles of Ceramic Processing. (Wiley-Interscience, New York 1995).
Google Scholar
[38]
S.D. Beyea, A. Caprihan, S.J. Glass, A. DiGiovanni: J. Appl. Phys. Vol. 94 (2003), p.935.
Google Scholar
[39]
S. J. Glass, D. J. Green, J. Am. Ceram. Soc.: Vol. 82, (1999), p.2745.
Google Scholar
[40]
S. J. Gregg, K. S. W. Sing, Adsorption, Surface Area and Porosity, 2nd ed. (Academic, Inc., New York, 1982).
Google Scholar
[41]
S. Lowell, J. E. Shields, Powder Surface Area and Porosity, 3rd ed. (Chapman & Hall, New York, 1991).
Google Scholar