Controlled synthesis of nanostructured particles by flame spray pyrolysis

Journal of Aerosol Science - Tập 33 Số 2 - Trang 369-389 - 2002
Lutz Mädler1, Hendrik K. Kammler1, Roger Mueller1, Sotiris E. Pratsinis1
1Department of Mechanical Engineering and Process Engineering, Institute of Process Engineering, ETH Zürich, CH-8092 Zürich, Switzerland

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Abramovich, 1963

Arabi-Katbi, 2001, Monitoring the flame synthesis of TiO2 particles by in situ FT-IR spectroscopy and thermophoretic sampling, Combustion and Flame, 124, 560, 10.1016/S0010-2180(00)00227-3

Bejan, 1984

Best, 1986, Extension of emission–transmission technique to particulate samples using FT-IR, Combustion and Flame, 66, 47, 10.1016/0010-2180(86)90032-5

Best, 1991, Tomographic reconstruction of FT-IR emission and transmission spectra in a sooting laminar diffusion flame: Species concentrations and temperatures, Combustion and Flame, 85, 309, 10.1016/0010-2180(91)90136-Y

Bickmore, 1998, Ultrafine titania by flame spray pyrolysis of a titanatrane complex, Journal of European Ceramic Society, 18, 287, 10.1016/S0955-2219(97)00109-X

Bickmore, 1996, Ultrafine spinel powders by flame spray pyrolysis of a magnesium aluminum double alkoxide, Journal of American Ceramic Society, 79, 1419, 10.1111/j.1151-2916.1996.tb08608.x

Brewster, 1997, Generation of unagglomerated, dense, BaTiO3 particles by flame-spray pyrolysis, AIChE Journal, 43, 2665, 10.1002/aic.690431310

Briesen, 1998, The effect of precursor in flame synthesis of SiO2, Chemical Engineering Science, 53, 4105, 10.1016/S0009-2509(98)00219-X

Chen, Y. -J., Glumac, N. G., Skandan, G., & Kear, B. H. (1997). High-rate production of non-agglomerated nanoparticles by flame synthesis. Chemistry and physics of nanostructures and related non-equilibrium materials TMS annual meeting (pp. 143–148).

Chiu, 1977, Group combustion of liquid droplets, Combustion Science and Technology, 17, 127, 10.1080/00102207708946823

Dobbins, M. S., & McLay, R. E. (1991). Methods of making fused silica by decomposing siloxanes, U.S. Patent 5,043,002.

Faeth, 1977, Current status of droplet and liquid combustion, Progress in Energy Combustion Science, 3, 191, 10.1016/0360-1285(77)90012-0

Feldmann-Schlobohm, G., Mueller, B., Kuntz, M., Raulin, D., & Riddle, R. (1998). Bi(Pb)SrCaCuO superconductors. U.S. patent 5.814.585.

Freeman, 1960, Determination of the radial distribution of brightness in a cylindrical luminous medium with self-absorption, Journal of Optical Society of America, 50, 826, 10.1364/JOSA.50.000826

Goldsmith, 1956, Experiments on the burning of single drops of fuel, Jet Propulsion, 26, 172, 10.2514/8.6952

Grimm, 1997, Flame pyrolysis—a preparation route for ultrafine pure gamma-Fe2O3 powders and the control of their particle size and properties, Journal of Materials Science, 32, 1083, 10.1023/A:1018598927041

Gutheil, E. (1998). Modellierung technischer Sprayflammen. Fortschr.-Ber. VDI Reihe 6 Nr. 390. VDI Verlag, Düsseldorf (ISBN 3-18-339006-X).

Gutheil, 1998, Counterflow spray combustion modeling with detailed transport and detailed chemistry, Combustion and Flame, 113, 92, 10.1016/S0010-2180(97)00192-2

Hartmann, 1989, Fumed oxides as base materials for ceramic applications, Materials Science and Engineering, 109, 243, 10.1016/0921-5093(89)90594-7

Hurd, 1988, In situ growth and structure of fractal silica aggregates in a flame, Journal of Colloid Interface Science, 122, 178, 10.1016/0021-9797(88)90301-3

Kammler, 1999, Scaling-up the production of nanosized SiO2 particles in a double diffusion flame aerosol reactor, Journal of Nanoparticle Research, 1, 467, 10.1023/A:1010080004637

Kammler, 2001, Synthesis of Silica-Carbon particles in a turbulent H2-air flame aerosol reactor, AIChE Journal, 47, 1533, 10.1002/aic.690470707

Karpetis, 2000, An experimental study of well-defined turbulent non-premixed spray flames, Combustion and Flame, 121, 1, 10.1016/S0010-2180(99)00115-7

Karthikeyan, 1997, Nano-material powders and deposits prepared by flame spray processing of liquid precursors, Nanostructured Materials, 8, 61, 10.1016/S0965-9773(97)00066-4

Kilian, 2001, A novel aerosol combustion process for the high rate formation of nanoscale oxide particles, Aerosol Science and Technology, 34, 227, 10.1080/027868201300034880

Kriegel, 1994, Flame pyrolysis—a preparation route for ultrafine powders of metastable β-SrMNO3 and NiMn2O4, Journal of Materials Science Letters, 13, 1111, 10.1007/BF00633530

Labowski, M., & Rosner, D. E. (1978). “Group” combustion of droplets in fuel clouds. I. Quasi-steady predictions. In J. T. Zung (Ed.), Evaporation–combustion of fuels, Vol. 166 (pp. 63–79). Washington, DC, American Chemical Society.

Laine, 1999, Making nanosized oxide powders from precursors by flame spray pyrolysis, Key. Eng. Mat., 159, 17, 10.4028/www.scientific.net/KEM.159-160.17

Lefebvre, 1989

Lenggoro, 2000, An experimental and modeling investigation of particle production by spray pyrolysis using a laminar flow aerosol reactor, Journal of Materials Research, 15, 733, 10.1557/JMR.2000.0106

Messing, 1993, Ceramic powder synthesis by spray-pyrolysis, Journal of American Ceramic Society, 76, 2707, 10.1111/j.1151-2916.1993.tb04007.x

Morrison, 1993, In situ infrared measurements of film and gas properties during the plasma deposition of amorphous hydrogenated silicon, Journal of Vaccum Science and Technology, A11, 490, 10.1116/1.578761

Morrison, 1997, In situ Fourier transform infrared characterization of the effect of electrical fields on the flame synthesis of TiO2 particles, Chemical Matter, 9, 2702, 10.1021/cm960508u

Moustafa, 1993, Further study of high-speed single free jets, Aeronautical Journal, 97, 171, 10.1017/S0001924000026129

Narayanan, 1997, Synthesis and characterization of precursors for group ii metal aluminates, Applied Organometallic Chemistry, 11, 919, 10.1002/(SICI)1099-0739(199710/11)11:10/11<919::AID-AOC666>3.0.CO;2-Z

Pratsinis, 1998, Flame aerosol synthesis of ceramic powders, Progress in Energy Combustion Science, 24, 197, 10.1016/S0360-1285(97)00028-2

Rosner, 1986

Schneider, M. H. (1986). Untersuchung zum Einfluss der Zerstäubung auf die Verdampfung flüssiger Brennstoffe in turbulenten Sprayflammen. Ph.D. thesis, Technische Hochschule Darmstadt.

Sirignano, 1999

Sokolowski, 1977, The “In-flame–reaction” method for Al2O3 aerosol formation, Journal of Aerosol Science, 8, 219, 10.1016/0021-8502(77)90041-6

Turns, 1996

Ulrich, 1971, Theory of particle formation and growth in oxide synthesis flames, Combustion Science and Technology, 4, 47, 10.1080/00102207108952471

Wark, 2000, The structure of an acoustically forced, reacting two-phase jet, Combustion and Flame, 120, 539, 10.1016/S0010-2180(99)00111-X

White, 1974

Williams, 1990

Zachariah, 1991, Flame synthesis of high-Tc superconductors, Combustion and Flame, 87, 100, 10.1016/0010-2180(91)90030-F

Zhu, 1996, Flame synthesis of nanosize powders—effect of flame configuration and oxidant composition, ACS Symposium Series, 622, 64, 10.1021/bk-1996-0622.ch004