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5 - Crystal growth

Published online by Cambridge University Press:  05 July 2015

Alison Lewis
Affiliation:
University of Cape Town
Marcelo Seckler
Affiliation:
Universidade de São Paulo
Herman Kramer
Affiliation:
Technische Universiteit Delft, The Netherlands
Gerda van Rosmalen
Affiliation:
Technische Universiteit Delft, The Netherlands
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Summary

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Chapter
Information
Industrial Crystallization
Fundamentals and Applications
, pp. 104 - 129
Publisher: Cambridge University Press
Print publication year: 2015

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References

Bennema, P. 1993. Growth and morphology of crystals: Integration of theories of roughening and Hartman-Perdok theory. In Handbook of Crystal Growth: Fundamentals, Thermodynamics and Kinetics, Hurle, D. T. J. (ed.), North-Holland.Google Scholar
Berglund, K. and Larson, M. 1984. Modeling of growth rate dispersion of citric acid monohydrate in continuous crystallizers.AIChE Journal, 30, 280–287.CrossRefGoogle Scholar
Burton, W., Cabrera, N. and Frank, F. 1951. The growth of crystals and the equilibrium structure of their surfaces.Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences, 243, 299–358.CrossRefGoogle Scholar
Davey, R. J., Harding, M. M. and Rule, R. J. 1991. The microcrystalline nature of cubic, dendritic and granular salt.Journal of Crystal Growth, 114, 7–12.CrossRefGoogle Scholar
Dejeu, V R., Reka, B., Cormos, A.-M., Sara, B. E. and Agachi, P.-S. 2010. Growth Rate of Hydroxyapatite Crystals Obtained by Precipitation. Studia Universitatis Babes-Bolyai, Chemia.Google Scholar
Dhanaraj, G., Byrappa, K. and Prasad, V 2010. Springer Handbook of Crystal Growth, Springer.CrossRefGoogle Scholar
Frank, F. C. 1949. The influence of dislocations on crystal growth.Discussions of the Faraday Society, 5, 48–54.
Garside, J. and Jancic, S. J. 1978. Prediction and measurement of crystal size distributions for size-dependent growth. Chemical Engineering Science, 33, 1623–1630.CrossRefGoogle Scholar
Garside, J., Mersmann, A., Nyvlt, J. et al. 2002. Measurement of Crystal Growth and Nucleation Rates, Institution of Chemical Engineers.
Hauke, G. 2008. An Introduction to Fluid Mechanics and Transport Phenomena, Springer Science+Business Media B.V.CrossRefGoogle Scholar
Jetten, L. A. M. J., Human, H. J., Bennema, P. and Van Der Eerden, J. P. 1984. On the observation of the roughening transition of organic crystals, growing from solution. Journal of Crystal Growth, 68, 503–516.CrossRefGoogle Scholar
Judat, B. and Kind, M. 2004. Morphology and internal structure of barium sulfate-derivation of a new growth mechanism. Journal of Colloid and Interface Science, 269, 341–353.CrossRefGoogle ScholarPubMed
Kashchiev, D. 2008. Toward a better description of the nucleation rate of crystals and crystalline monolayers. The Journal of Chemical Physics, 129, 164701.CrossRefGoogle Scholar
Lee, M.-Y. and Parkinson, G. M. 1999. Growth rates of gibbsite single crystals determined using in situ optical microscopy. Journal of Crystal Growth, 198–199, 270–274.Google Scholar
Lin, M., Fu, Z. Y., Tan, H. R. et al. 2012. Hydrothermal synthesis of CeO2 nanocrystals: Ostwald ripening or oriented attachment?Crystal Growth and Design, 12, 3296–3303.CrossRefGoogle Scholar
Masaoka, K., Misumi, R., Nishi, K. and Kaminoyama, M. 2014. Enhancement in the crystal growth rate for a classified bed-type crystallizer using the adhesion phenomena of fine crystals. Journal of Chemical Engineering of Japan, 47, 78–84.CrossRefGoogle Scholar
Matsuoka, M. and Eguchi, N. 1993. Growth of m-chloronitrobenzene crystals in the presence of microcrystals. Journal of Physics D: Applied Physics, 26, B162.CrossRefGoogle Scholar
Matsuoka, M., Kamada, T. and Takiyama, H. 1996. Growth rate enhancement of potash alum crystals by microcrystals.Journal of Crystal Growth, 158, 322–327.CrossRefGoogle Scholar
Mersmann, A. and Kind, M. 1988. Chemical engineering aspects of precipitation from solution. Chemical Engineering and Technology, 11, 264–276.CrossRefGoogle Scholar
Mullin, J. W. 2003. Crystallization and precipitation. In Ullmann's Encyclopedia of Industrial Chemistry, Ullmann, F. and Gerhartz, W. (eds.) VCH.CrossRefGoogle Scholar
Nielsen, A. E. 1984. Electrolyte crystal growth mechanisms.Journal of Crystal Growth, 67, 289–310.Google Scholar
Nývlt, J. 1977. Solid-Liquid Phase Equilibria, Elsevier Scientific Publications.
O'Hara, M. and Reid, R. C. 1973. Modeling Crystal Growth Rates from Solution, Prentice-Hall.Google Scholar
Richardson, J. F., Coulson, J. M., Harker, J. H. and Backhurst, J. R. 2002. Coulson and Richardson s Chemical Engineering: Particle Technology and Separation Processes, Butterworth-Heinemann.Google Scholar
Ristić, R., Sherwood, J. and Shripathi, T. 1990. Strain variation in the {100} growth sectors of potash alum single crystals and its relationship to growth rate dispersion.Journal of Crystal Growth, 102, 245–248.CrossRefGoogle Scholar
Snijders, R. and Nicolaides, K. 1994. Fetal biometry at 14-40 weeks' gestation. Ultrasound in Obstetrics and Gynecology, 4, 34–48.CrossRefGoogle Scholar
Sunagawa, I. 2005. Crystals: Growth, Morphology and Perfection, Cambridge University Press.CrossRefGoogle Scholar
Sunagawa, I. and Yokogi, A. 1999. Beryl crystals from pegmatites: Morphology and mechanism of crystal growth.Journal of Gemmology, 26, 521–533.CrossRefGoogle Scholar
Takiyama, H., Eto, T. and Matsuoka, M. 2002. Effects of suspension density on crystal growth rate in multiparticle agitated crystallizers.Journal of Chemical Engineering of Japan, 35, 1045–1049.CrossRefGoogle Scholar
Takiyama, H., Tezuka, N., Matsuoka, M., Ristic, R. I. and Sherwood, J. N. 1998. Growth rate enhancement by microcrystals and the quality of resulting potash alum crystals. Journal of Crystal Growth, 192, 439–447.CrossRefGoogle Scholar
Tavare, N. 1985. Crystal growth rate dispersion. The Canadian Journal of Chemical Engineering, 63, 436–442.CrossRefGoogle Scholar
van der Heijden, A. E. D. M. and van der Eerden, J. P. 1992. Growth rate dispersion: the role of lattice strain. Journal of Crystal Growth, 118, 14–26.CrossRefGoogle Scholar
Wang, S. and Mersmann, A. 1992. Initial-size-dependent growth rate dispersion of attrition frag-ments and secondary nuclei.Chemical Engineering Science, 47, 1365–1371.CrossRefGoogle Scholar
Yuwono, V. M., Burrows, N. D., Soltis, J. A. and Penn, R. L. 2010. Oriented aggregation: formation and transformation of mesocrystal intermediates revealed.Journal of the American Chemical Society, 132, 2163–2165.CrossRefGoogle ScholarPubMed

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