Academic literature on the topic 'Montmorillonite K10'

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Journal articles on the topic "Montmorillonite K10"

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Sekewael, Serly J., Karna Wijaya, and Triyono . "Effect Of Heating On The Crystalinity And The Lattice Parameter Of Silica-Zirconia Montmorillonite K10 And Silica-Ferri Oxide Montmorillonite K10 Nanocomposites." Indo. J. Chem. Res. 6, no. 1 (2018): 550–55. http://dx.doi.org/10.30598//ijcr.2018.6-ser.

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The thermal treatment of the silica-zirconia montmorillonite K10 and silica-ferri oxide montmorillonite K10 nanocomposites at 300 and 500 °C has been carried out, respectively as part of a study of their function as the catalyst. The heating effect on the crystallinity and the lattice parameter calculation of both nanocomposites was studied using XRD and FTIR instruments. The results showed that the nanocomposite silica-zirconia montmorillonite K10 has a thermal resistance and the crystallinity better than the silica-ferri oxide montmorillonite K10, and both have values varying lattice paramet
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Sekewael, Serly J., Karna Wijaya, and Triyono . "Pengaruh Pemanasan Terhadap Kristalinitas Dan Parameter Kisi Nanokomposit Silika-Zirkonia Montmorillonit K10 Dan Silika-Besi Oksida Montmorillonit K10." Indo. J. Chem. Res. 6, no. 1 (2018): 38–43. http://dx.doi.org/10.30598//ijcr.2018.6-sjs.

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The thermal treatment of the silica-zirconia montmorillonite K10 and silica-ferri oxide montmorillonite K10 nanocomposites at 300 and 500 °C has been carried out, respectively as part of a study of their function as the catalyst. The heating effect on the crystallinity and the lattice parameter calculation of both nanocomposites was studied using XRD and FTIR instruments. The results showed that the nanocomposite silica-zirconia montmorillonite K10 has a thermal resistance and the crystallinity better than the silica-ferri oxide montmorillonite K10, and both have values varying lattice paramet
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Sekewael, Serly J., Karna Wijaya, and Triyono . "Pengaruh Pemanasan Terhadap Kristalinitas Dan Parameter Kisi Nanokomposit Silika-Zirkonia Montmorillonit K10 Dan Silika-Besi Oksida Montmorillonit K10." Indonesian Journal of Chemical Research 6, no. 1 (2018): 38–43. http://dx.doi.org/10.30598/ijcr.2018.6-sjs.

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The thermal treatment of the silica-zirconia montmorillonite K10 and silica-ferri oxide montmorillonite K10 nanocomposites at 300 and 500 °C has been carried out, respectively as part of a study of their function as the catalyst. The heating effect on the crystallinity and the lattice parameter calculation of both nanocomposites was studied using XRD and FTIR instruments. The results showed that the nanocomposite silica-zirconia montmorillonite K10 has a thermal resistance and the crystallinity better than the silica-ferri oxide montmorillonite K10, and both have values varying lattice parame
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Soriente, Annunziata, Rosa Arienzo, Margherita De Rosa, Aldo Spinella, Arrigo Scettri, and Laura Palombi. "K10 montmorillonite catalysis." Green Chemistry 1, no. 3 (1999): 157–62. http://dx.doi.org/10.1039/a902102g.

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BEKCI, ZEHRA MOLU, MINE KURTBAY ANTEP, MELEK MERDIVAN, and KADIR YURDAKOÇ. "Zearalenone Removal in Synthetic Media and Aqueous Part of Canned Corn by Montmorillonite K10 and Pillared Montmorillonite K10." Journal of Food Protection 74, no. 6 (2011): 954–59. http://dx.doi.org/10.4315/0362-028x.jfp-10-317.

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The capacities of montmorillonite K10 (K10), aluminum pillared K10 (Al-K10), and iron pillared K10 (Fe-K10) to eliminate zearalenone (ZEN) from synthetic media and the aqueous part of canned corn were studied. Original clay and pillared clays were characterized in terms of X-ray powder diffraction analysis and N2 adsorption-desorption isotherms. The maximum amounts of adsorption of ZEN by K10, Al-K10, and Fe-K10 at 25°C and pH 7 were 0.202, 1.305, and 1.028 mg/g and 0.264, 0.096, and 0.255 mg/g, calculated from Langmuir and Freundlich isotherms, respectively. The adsorption of ZEN was also stu
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Bonacci, Sonia, Monica Nardi, Paola Costanzo, et al. "Montmorillonite K10-Catalyzed Solvent-Free Conversion of Furfural into Cyclopentenones." Catalysts 9, no. 3 (2019): 301. http://dx.doi.org/10.3390/catal9030301.

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A simple and eco-friendly montmorillonite K10 (MK10)-catalyzed method for the synthesis of cyclopentenone derivatives from biomass-produced furfural has been developed. The versatility of this protocol is that the reactions were performed under solvent-free conditions and in a short reaction time under heterogeneous catalysis. Montmorillonite K10 is mostly explored as a heterogeneous catalyst since it is inexpensive and environmentally friendly.
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Cheng, Lehua, Enzhu Hu, Xianquan Chao, Renfa Zhu, Kunhong Hu, and Xianguo Hu. "MoS2/Montmorillonite Nanocomposite: Preparation, Tribological Properties, and Inner Synergistic Lubrication." Nano 13, no. 12 (2018): 1850144. http://dx.doi.org/10.1142/s1793292018501448.

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A nano-MoS2/montmorillonite K-10 (K10) composite was prepared and characterized. The composite contains two types of 2H-MoS2 nanoparticles. One is the hollow spherical MoS2 with a size range of 75[Formula: see text]nm, and the other is the spherical nano cluster of MoS2 with a size range of 30[Formula: see text]nm. The two kinds of nano-MoS2 were formed via assembly of numerous MoS2 nano-platelets with a size of [Formula: see text][Formula: see text]nm. A tribological comparison was then made among nano-MoS2/K10, K10, nano-MoS2 and a mechanical mixture of K10 and nano-MoS2. K10 reduced the wea
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Asseid, Fathi M., Jack M. Miller, and James H. Clark. "FT-IR and 29Si, 27Al, and 19F MAS NMR studies of the adsorption of CdF2, ZnF2, and CuF2 onto montmorillonite K10; activity towards Friedel–Crafts alkylation." Canadian Journal of Chemistry 70, no. 9 (1992): 2398–404. http://dx.doi.org/10.1139/v92-304.

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ZnF2, CdF2, and CuF2 have been adsorbed onto the surface of montmorillonite K10, and the infrared and 19F, 27Al, and 29Si MAS NMR spectra of the resulting reagents over a range of loadings and activation temperatures have been obtained. CuF2 was observed to attack the SiO2 layer and form the complex CuSiF6, ZnF2 tends to attack the aluminium oxide layer, in which Zn isomorphously replaces Al, and forms AlF3 and AlF4− complexes. The spectroscopic evidence rules out the formation of any Al–F and (or) Si–F species as CdF2 is adsorbed on the surface of montmorillonite K10. The reactivity of MF2–K1
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Kawi, S., and Y. Z. Yao. "Silica bonded K10 montmorillonite (SBM):." Microporous and Mesoporous Materials 28, no. 1 (1999): 25–34. http://dx.doi.org/10.1016/s1387-1811(98)00279-0.

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Ravi, K., B. Krishnakumar, and M. Swaminathan. "An Efficient Protocol for the Green and Solvent-Free Synthesis of Azine Derivatives at Room Temperature Using BiCl3-Loaded Montmorillonite K10 as a New Recyclable Heterogeneous Catalyst." ISRN Organic Chemistry 2012 (November 14, 2012): 1–9. http://dx.doi.org/10.5402/2012/595868.

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A new BiCl3-loaded montmorillonite K10 catalyst has been prepared by solid dispersion method and was characterized by X-ray diffraction (XRD), field emission scanning electron microscopy (FE-SEM), and cyclic voltammetry (CV) measurements. BiCl3 loaded K10 (BiCl3-K10) has been used as solid acid catalyst for the synthesis of azine derivatives from benzophenone hydrazone and ketones/aldehydes by simple physical grinding. This BiCl3-K10 gives an excellent yield with short reaction time and is an inexpensive, easily recyclable catalyst for this reaction.
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Dissertations / Theses on the topic "Montmorillonite K10"

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Saib, Djamila. "Réactions d'arylation d'oléfines catalysées par la montmorillonite K10 et la montmorillonite de Marnia (Algérie) échangée par les cations Al³⁺, Cr³⁺, Zn²⁺, Ni²⁺, Cu²⁺." Grenoble 2 : ANRT, 1988. http://catalogue.bnf.fr/ark:/12148/cb37618388k.

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Saib, Djamila. "Reactions d'arylation d'olefines catalysees par la montmorillonite k10 et la montmorillonite de marnia (algerie) echangee par les cations al**(3+), cr**(3+), zn**(2+), ni**(2+), cu**(2+)." Rennes 1, 1988. http://www.theses.fr/1988REN10001.

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MELO, Valentina Nascimento e. "Síntese de 2-(1H-1,2,3-triazol)-1,4-naftoquinona de O-glicosídeos 2,3-insaturados com potencial antitumoral." Universidade Federal Rural de Pernambuco, 2015. http://www.tede2.ufrpe.br:8080/tede2/handle/tede2/6378.

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Submitted by (lucia.rodrigues@ufrpe.br) on 2017-02-15T15:25:59Z No. of bitstreams: 1 Valentina Nascimento e Melo.pdf: 1846879 bytes, checksum: 0f435fbf6eac1935724bc84cb61e7e68 (MD5)<br>Made available in DSpace on 2017-02-15T15:25:59Z (GMT). No. of bitstreams: 1 Valentina Nascimento e Melo.pdf: 1846879 bytes, checksum: 0f435fbf6eac1935724bc84cb61e7e68 (MD5) Previous issue date: 2015-03-16<br>Coordenação de Aperfeiçoamento de Pessoal de Nível Superior - CAPES<br>Conselho Nacional de Pesquisa e Desenvolvimento Científico e Tecnológico - CNPq<br>Two strategies were considered for the synth
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Wirth, Christine. "Montmorillonit K10 als Trägermaterial in der metallocenkatalysierten Olefinpolymerisation Strukturanalyse des Schichtsilicats und Katalysatorsystems ; Charakterisierung der Nanocomposite /." [S.l.] : [s.n.], 2006. http://deposit.ddb.de/cgi-bin/dokserv?idn=978796934.

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Wirth, Christine [Verfasser]. "Montmorillonit K10 als Trägermaterial in der metallocenkatalysierten Olefinpolymerisation : Strukturanalyse des Schichtsilicats und Katalysatorsystems ; Charakterisierung der Nanocomposite / vorgelegt von Christine Wirth." 2006. http://d-nb.info/978796934/34.

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Books on the topic "Montmorillonite K10"

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Asseid, Fathi M. FT-IR and MAS NMR analysis of montmorillonite K10 supported MF2 reagents and their activity as catalysis. Dept. of Chemistry, Brock University, 1991.

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Book chapters on the topic "Montmorillonite K10"

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"Montmorillonite K10 and NaK10 as bifunctional materials: scavengers of formaldehyde from urea-formaldehyde resins and methylene blue in aqueous media." In Book of Abstracts - RAD 2024 Conference. RAD Centre, Niš, Serbia, 2024. http://dx.doi.org/10.21175/rad.abstr.book.2024.18.4.

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Cativiela, C., F. Figueras, J. M. Fraile, et al. "K10 Montmorillonites as catalysts in Diels-Alder reactions: influence of the exchanged cation." In Studies in Surface Science and Catalysis. Elsevier, 1993. http://dx.doi.org/10.1016/s0167-2991(08)63358-3.

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