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1

Jacobs, Peter A. Synthesis of high-silica aluminosilicate zeolites. Elsevier, 1987.

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2

Rappensberger, Csaba Ferenc. Novel rare-earth aluminosilicate glasses and glass-ceramics. typescript, 1996.

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3

Bansal, Narottam P. Crystallization and properties of Sr-Ba aluminosilicate glass-ceramic matrices. National Aeronautics and Space Administration, 1991.

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4

Luk, Kathryn Michelle. The encapsulation of nuclear waste in a magnesium aluminosilicate glass-ceramic. typescript, 1999.

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5

Bansal, Narottam P. Chemical vapor deposited SiC (SCS-0) fiber-reinforced strontium aluminosilicate glass-ceramic composites. National Aeronautics and Space Administration, 1997.

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6

Newton, Peter J. Sodium sulfate corrosion of silicon carbide fiber-reinforced calcium aluminosilicate glass-ceramic matrix composites. Naval Postgraduate School, 1994.

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7

Farquhar, Morag Louise. Studies of the interaction of cadmium, copper and lead in aqueous solution with selected aluminosilicate minerals. University of Manchester, 1996.

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8

Bansal, Narottam P. Effects of fiber content on mechanical properties of CVD SiC fiber-reinforced strontium aluminosilicate glass-ceramic composites. National Aeronautics and Space Administration, 1996.

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9

Bansal, Narottam P. Effects of fiber content on mechanical properties of CVD SiC fiber-reinforced strontium aluminosilicate glass-ceramic composites. National Aeronautics and Space Administration, 1996.

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10

Ashton, Sarah Lindsey. Enhancement of the separation of nitrogen from methane in natural gas by means of transition metal complexes encapsulated in aluminosilicate materials. De Montfort University, 1998.

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11

Vargin, V. V., ред. Catalyzed Controlled Crystallization of Glasses in the Lithium Aluminosilicate System / Katalizirovannaya Reguliruemaya Kristallizatsiya Stekol Litievoalyumosilikatnoi Sistemy / Катализированная Регулируемая Кристаллизация Стекол Литиеволюмосиликатной Системы. Springer US, 1995. http://dx.doi.org/10.1007/978-1-4899-4908-0.

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12

1956-, Kabeyene Beyala Kamgang, ed. Normative alterology and advanced applications: A peculiar facet of aluminosilicate-bearing rocks petrology, with regard to their supergene evolution : with assorted new illustrations. Presses universitaires de Yaoundé, 2011.

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13

Mossotti, V. G. Short-range physicochemical structure of amorphous aluminosilicates. Dept. of the Interior, U.S. Geological Survey, 1987.

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14

Mossotti, V. G. Short-range physicochemical structure of amorphous aluminosilicates. Dept. of the Interior, U.S. Geological Survey, 1987.

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15

Mossotti, V. G. Short-range physicochemical structure of amorphous aluminosilicates. Dept. of the Interior, U.S. Geological Survey, 1987.

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16

Geological Survey (U.S.), ed. Short-range physicochemical structure of amorphous aluminosilicates. Dept. of the Interior, U.S. Geological Survey, 1987.

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17

Geological Survey (U.S.), ed. Short-range physicochemical structure of amorphous aluminosilicates. Dept. of the Interior, U.S. Geological Survey, 1987.

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18

Synthesis of High-Silica Aluminosilicate Zeolites. Elsevier, 1987. http://dx.doi.org/10.1016/s0167-2991(09)x6010-6.

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19

Jacobs, P. A., and J. A. Martens. Synthesis of High-Silica Aluminosilicate Zeolites. Elsevier Science & Technology Books, 1987.

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20

Li, Dong X. Kinetics studies of mullite formation from aluminosilicate gels. 1990.

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21

Fathi, Zakaryae. Surface modification of sodium aluminosilicate glasses using microwave energy. 1994.

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22

Vargin, V. V. Catalyzed Controlled Crystallization of Glasses in the Lithium Aluminosilicate System. Springer, 2014.

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23

Gasteiger, Hubert A. Mechanism and equilibrium modeling of aluminosilicate scaling in alkaline media. 1988.

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24

Crystallization kinetics of barium and strontium aluminosilicate glasses of feldspar composition. National Aeronautics and Space Administration, 1994.

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25

National Aeronautics and Space Administration (NASA) Staff. Crystallization Kinetics of Barium and Strontium Aluminosilicate Glasses of Feldspar Composition. Independently Published, 2019.

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26

Kovzun, I. G., V. A. Prokopenko, A. V. Panko, et al. Nanochemical, nanostructural and biocolloidal aspects of transformations in dispersions of iron-aluminosilicate minerals. PH "Akademperiodyka", 2020. http://dx.doi.org/10.15407/akademperiodyka.416.188.

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It was considered the modern ideas of colloidal and biocolloidal nanoscience concerning complex transformational processes in widespread dispersions of iron-aluminosilicates. It was shown for the fi rst time that they infl uence on catastrophic phenomena in marine turbiditic-pelitic sediments and soils consisting of iron-aluminosilicates. Th e fundamental study results of nano- and microstructure transformations of disperse ironaluminosilicate compositions are presented. And it was established the possibilities of their application in: constructing of protective structures; balneology and medi
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27

Chrysohoidou, Dimitra. Studies of alkali vapour removal from hot gases at 650°C by aluminosilicate sorbents. 1996.

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28

Isakov, Y., and Kh Minachev. New Catalytic Applications of Aluminosilicate Zeolites and Related Molecular Sieves (Soviet Scientific Reviews Series, Section B). Routledge, 1992.

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29

Blevins, Nero Regina. Introduction to Aluminosilicates. Nova Science Publishers, Incorporated, 2020.

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30

Blevins, Nero Regina. Introduction to Aluminosilicates. Nova Science Publishers, Incorporated, 2020.

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31

Grassian, Vicki H., and Sarah C. Larsen. Synthesis, characterization and environmental applications of nanocrystalline zeolites. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.18.

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This article describes the synthesis, characterization and environmental applications of nanocrystalline zeolites. It begins by considering the use of nanocrystalline zeolites as building blocks in the preparation of hierarchical zeolite structures, followed by a discussion of the synthesis of silicalite-1 with systematically varied crystal sizes, along with the synthesis of nanocrystalline aluminosilicates, NaZSM-5 and NaY. It then looks at the various applications of nanozeolites and hierarchical zeolite structures for environmental catalysis, adsorption of volatile organic compounds and oth
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