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Suplemento Estudio de Parámetros de Síntesis de las estructuras zeolíticas Linde Tipo A (LTA) y Faujasita (FAU) X a partir de aluminio post-consumo y diatomita, para la remoción de metales pesados

dc.contributor.authorQuintana, Jose H.
dc.contributor.authorAparicio, Andrea P.
dc.contributor.authorParra, Leidy K.
dc.contributor.authorHenao, José A.
dc.contributor.authorRíos, Carlos A.
dc.contributor.corporatenameAcademia Colombiana de Ciencias Exactas, Físicas y Naturalesspa
dc.date.accessioned2021-10-15T17:13:13Z
dc.date.available2021-10-15T17:13:13Z
dc.date.issued2014-11-28
dc.description.abstractEn este estudio, se sintetizaron las zeolitas LTA y FAUJASITA NaX por el método hidrotérmico, usando como material de partida la diatomita, como precursor para la obtención del silicato de sodio y aluminio post-consumo, como precursor de la solución de aluminio. Las zeolitas se caracterizaron por Difracción de Rayos X de Muestras Policristalinas (DRXP), Espectroscopia Infrarroja con atenuación (ATR-IR) y Análisis termogravimétrico (ATG), Calorimetría de Barrido Diferencial (CBD) y Microscopía Electrónica de Barrido (MEB). Las zeolitas sintetizadas presentaron una capacidad de fijación de 4,8mmol/g de Cu2+, 3,4mmol/g para el Cd2+ y 2,3mmol/g de Ni2+, partiendo de los nitratos de estos cationes, lo cual, demuestra el potencial de estos materiales para la remoción de metales pesados.spa
dc.description.abstractIn this study, the LTA and faujasite NaX zeolites are synthesized by the hydrothermal method, using as starting material the diatomite, as a precursor for the production of sodium silicate, and aluminum post-consumer, as a precursor of the aluminum solution. The zeolites were characterized by X-Ray Powder Diffraction, (XRD), Infrared Spectroscopy with Attenuation (ATR-IR) and Thermogravimetric analysis (TGA), Differential Scanning Calorimetry (DSC) and Scanning Electronic Micoscopy (SEM). Sintered zeolites had a binding capacity of 4.8 mmol / g of Cu2+, 3.4 mmol / g for Cd2 + and 2.3 mmol / g of Ni2 +, starting from the nitrates of these cations, which demonstrates the potential of these materials for the removal of heavy metals.eng
dc.format.extent14 páginasspa
dc.format.mimetypeapplication/pdfspa
dc.identifier.doihttps://doi.org/10.18257/raccefyn.162
dc.identifier.urihttps://repositorio.accefyn.org.co/handle/001/835
dc.language.isospaspa
dc.publisherAcademia Colombiana de Ciencias Exactas, Físicas y Naturalesspa
dc.publisher.placeBogotá, Colombiaspa
dc.relation.citationendpage180spa
dc.relation.citationissueSuplementospa
dc.relation.citationstartpage167spa
dc.relation.citationvolume38spa
dc.relation.ispartofjournalRevista de la Academia Colombiana de Ciencias Exactas, Físicas y Naturalesspa
dc.rightsCreative Commons Attribution-NonCommercial-ShareAlike 4.0 Internationalspa
dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
dc.rights.coarhttp://purl.org/coar/access_right/c_abf2spa
dc.rights.licenseAtribución-NoComercial 4.0 Internacional (CC BY-NC 4.0)spa
dc.rights.urihttps://creativecommons.org/licenses/by-nc/4.0/spa
dc.subject.proposalDiatomitasspa
dc.subject.proposalDiatomiteeng
dc.subject.proposalAluminio post-consumospa
dc.subject.proposalPost-consumer aluminumeng
dc.subject.proposalTratamiento hidrotérmicospa
dc.subject.proposalHydrothermal treatmenteng
dc.subject.proposalZeolita LTAspa
dc.subject.proposalLTA-Naeng
dc.subject.proposalFaujasita NaXspa
dc.subject.proposalFaujasite-NaX zeoliteseng
dc.subject.proposalCobrespa
dc.subject.proposalCoppereng
dc.subject.proposalNíquelspa
dc.subject.proposalNickeleng
dc.subject.proposalCadmiospa
dc.subject.proposalCadmiumeng
dc.titleSuplemento Estudio de Parámetros de Síntesis de las estructuras zeolíticas Linde Tipo A (LTA) y Faujasita (FAU) X a partir de aluminio post-consumo y diatomita, para la remoción de metales pesadosspa
dc.typeArtículo de revistaspa
dc.type.coarhttp://purl.org/coar/resource_type/c_6501spa
dc.type.coarversionhttp://purl.org/coar/version/c_970fb48d4fbd8a85spa
dc.type.contentDataPaperspa
dc.type.driverinfo:eu-repo/semantics/articlespa
dc.type.redcolhttp://purl.org/redcol/resource_type/ARTspa
dc.type.versioninfo:eu-repo/semantics/publishedVersionspa
dcterms.audienceEstudiantes, Profesores, Comunidad científicaspa
dcterms.referencesAleksandrov Y., Tsyganova E. & Pisarev A. 2003, Reaction of Aluminum with Dilute Aqueous NaOH Solutions, RUSS. J. GEN. CHEM, 73 (689-694).spa
dcterms.referencesAlonso-Zarza A.M. 2010. Petrología sedimentaria. Notas de Teoría. Rocas Silícicas. REDUCA Serie de Petrología Sedimentaria, p. (113-116).spa
dcterms.referencesBahramian B., Ardejani F., Mirkhani V. & Badii K., 2008. Diatomite-supported manganese Schiff base: An efficient catalyst for oxidation of hydrocarbons, APPL. CATAL. A-GEN. 345 (97-103).spa
dcterms.referencesBernal J.P. & Railsback L., 2008, Introducción a la tabla periódica de los elementos y sus iones para ciencias de la tierra. REVISTA MEXICANA DE CIENCIAS GEOLÓGICAS. 25 (2) (236-246).spa
dcterms.referencesBorai E., Harjula R., Malinen L. & Paajanen A., 2009, Efficient removal of cesium from low-level radioactive liquid waste using natural and impregnated zeolite minerals, J. HAZARD MATER., 172 (416-422).spa
dcterms.referencesChaisena A., & Rangsriwatananon K., 2004. Synthesis of sodium zeolites from natural and modified diatomite. MATER LETT 59 (12) (1474-1479).spa
dcterms.referencesDanil A., El Gamouz A., Frangie S., Martínez V., Valiente L. & Webb O., 2012, Turning the volume down on heavy metals using tuned diatomite. A review of diatomite and modified diatomite for the extraction of heavy metals from water, J. HAZARD MATER., 241-242 (14-31).spa
dcterms.referencesDavenport W.G., King M.J., Rogers B., Weissenberger A. 2006, Sulphuric Acid Manufacture, SOUTHERN AFRICAN PYROMETALLURGY, 1 (1-16).spa
dcterms.referencesGerengi H., Kocak Y., Jazdzewska A., Kurtay M. & Durgun H., 2013, Electrochemical investigations on the corrosion behaviour of reinforcing steel in diatomite- and zeolite-containing concrete exposed to sulphuric acid, CONSTR. BUILD. MATER. 49 (471-477).spa
dcterms.referencesGhosh B., Agrawal D.C., & Bhatia S., 1994. Synthesis of zeolite A from calcined diatomaceous clay: Optimization studies. IND. ENG. CHEM RES, 33 (9) (2107-2110).spa
dcterms.referencesGómez, J., Ovejero G. & Romero M. (2001). Síntesis, carac-terización y aplicaciones de las zeolitas básicas. TRABAJO DOCTORAL. Universidad Complutense de Madrid, Madrid, España.spa
dcterms.referencesGross E., Shu X., Alayoglu S., Bechtel H., Martin M., Toste F. & Somorjai G., 2014. In Situ IR and X-ray High Spatial-Resolution Microspectroscopy Measurements of Multistep Organic Transformation in Flow Microreactor Catalyzed by Au Nanoclusters, J. AM. CHEM. SOC. 136 (9) (3624-3629).spa
dcterms.referencesHadjar H., Hamdi B., Jader M., Brendle J., Kessaïssia Z., Balard H. & Donnet J.B., 2008, Elaboration and characterisation of new mesoporous materials from diatomite and charcoal, MICROPOR. MESOPOR. MAT., 107 (219-226).spa
dcterms.referencesHerance, J., Marquet J. & Bourdelande J., 2005, Reactivos ocluidos en aluminosilicatos: Reactividad y comportamiento en óptica no lineal. Universidad Autónoma de Barcelona, Barcelona, España. TESIS DOCTORALspa
dcterms.referencesHollman G.G., Steenbruggen G. & Janssen-Jurkovičová M., 1999. A two-step process for the synthesis of zeolites from coal fly ash. FUEL 78 (10), 1225-1230.spa
dcterms.referencesInsung O., Ter Meulen U. & Langholz H., 1999. Use of diatomite filter aid residue in cattle feed. Georg-August-University Göttingen, Göttingen, Germany. Ph.D THESISspa
dcterms.referencesKarthika C. & Sekar M., 2013. Comparison studies of Adsorption Properties on Ni(II) Removal by Strong and Weak acid Cation-exchange Resins, RES. J. CHEM. SCI. 3 (3) (65-69).spa
dcterms.referencesKumar V., Matsuda M. & Miyake M., 2008, Sorption properties of the activated carbon-zeolite composite prepared from coal fly ash for Ni2+, Cu2+, Cd2+ and Pb2+, J. HAZARD. MATER., 160 (148-153).spa
dcterms.referencesLiu D., Yuan W., Deng L., Yu W., Sun. H. & Yuan P., 2014, Preparation of porous diatomite-templated carbons with large adsorption capacity and mesoporous zeolite K-H as a byproduct, COLLOID INTERFACE SCIENCE, Accepted Manuscript.spa
dcterms.referencesLiu H., Lu G., Guo Y., Guo Yun & Wang J., 2004. Effect of pretreatment on properties of TS-1/diatomite catalyst for hydroxylation of phenol by H2O2 in fixed-bed reactor. CATAL. TODAY. 93-95 (353-357).spa
dcterms.referencesLopez P.J., Desclés J., Allen A.E. & Bowler Ch. 2005. Prospects in diatoms research. CURR OPIN BIOTECH, 16 (2) (180-186).spa
dcterms.referencesMohamedbakr H., & Burkitbaev, M. 2009. Elaboration and Characterization of Natural Diatomite in Aktyubinsk/ Kazakhstan. THE OPEN MINERALOGY JOURNAL 3 (1) (12-16).spa
dcterms.referencesMohamedbark, (2010). Diatomite: Its Characterization, Modifica-tions and Applications. ASIAN J MAT. SCI. 2 (3) (121-136).spa
dcterms.referencesNaranjo W., Gaviria S., & Manosalva S. 2007. Mineralógica y Geoquímica de Diatomitas (Boyacá, Colombia). GEOLOGÍA COLOMBIANA 32 (77-88).spa
dcterms.referencesOliva M., Ramírez J., Garduño G., Cañétas J., & Ortega M. 2005. Caracterización diatomológica de tres cuerpos de agua de los humedales de Jilotepec-Xitlahuaca, Estado de México. HIDROBIOLÓGICA 15 (1) (1-26).spa
dcterms.referencesPatrikeev V.A., Pavlov M.L., Kutepov B.I., Makhamatkhanov R.A., Travkina., Sthestopal A.L. & Dzhemilev U.M., 2007. Crystallization of X-Type Zeolite from Concen-trated Sodium Silicate and Aluminate Solutions. BRIEF COMMUNICATIONS 80 (3) (498-500).spa
dcterms.referencesPehlivan E. & Altun T., 2006, The study of various parameters affecting the ion exchange of Cu2+, Zn2+, Ni2+, Cd2+, and Pb2+ from aqueous solution on Dowex 50W synthetic resin, J. HAZARD. MATER., B134 (149-156).spa
dcterms.referencesPozo M. & López M.J., 2004. Facies biosilíceas en el neógeno de la cuenca de madrid: origen e implicaciones sedimento-lógicas. REVISTA DE LA SOCIEDAD GEOLÓGICA DE ESPAÑA 17 (3-4) (229-248).spa
dcterms.referencesQiu W. & Zheng Y., 2009, Removal of lead, copper, nickel, cobalt, and zinc from water by a cancrinite-type zeolite synthesized from fly ash, CHEM. ENG. J., 145 (483-488).spa
dcterms.referencesRangsriwatananon, K., Chaisena, A., & Thongkasam, Ch. 2008. Thermal and acid treatment on raw natural diatomite influencing on synthesis of sodium zeolites. JOURNAL OF POROUS MATERIALS 15 (5) (499-5059.spa
dcterms.referencesRodríguez A., Romero J. & Castro E. 2005. Comportamiento refractario de probetas de morteros conformadas con diato-mitas como agregado mineral. REVISTA COLOMBIANA DE QUÍMICA 34 (2) (139-146).spa
dcterms.referencesSalam K., Al-Nasri & SM Holmes, 2013. Effect of Different Conditions on the Sorption Behaavior of Co2+ Using Celatom-Zeolite Y Compisite, MATER SCI ENG, Vol. 7 N° 9 (1-7).spa
dcterms.referencesShan W., Zhang Y., Wang Y., Xia J. & Tang Y., 2004. Synthesis of Meso-/Macroporous Zeolite (Fe,Al)-ZSM-5 Microspheres from Diatomite, CHEM LETT, 33 (3) (270-271).spa
dcterms.referencesVan Oers C.J., Góra-Marek K., Sadowska K., Mertens M., Meynen V., Datka J. & Cool P., 2014. In situ IR spectroscopic study to reveal the impact of the synthesis conditions of zeolite β nanoparticles on the acidic properties of the resulting zeolite, CHEM. ENG. J. 237 (372-379).spa
dcterms.referencesVillavicencio C., Molina A., & Fernández L. (2009). Estudio de la adsorción sobre zeolitas sintéticas modificadas con surfac-tantes. REVISTA DE LA FACULTAD DE INGENIERÍA U.C.V. 24 (3) (95-1079spa
dcterms.referencesWajima T. & Munakata K., 2012, Synthesis of Zeolitic Material from Paper Sludge Ash Using Diatomite, MATERIALS TRANSACTIONS, 53 (4) (592-596).spa
dcterms.referencesWang S. & Peng Y., 2010, Natural zeolites as effective adsorbents in water and wastewater treatment, CHEM. ENG. J., 156 (11-24).spa
dcterms.referencesWidiastuti. N., Wu H., Ang H. M., Dongke Z, 2011, Removal of ammonium from greywater using, DESALINATION, 277 (15–23).spa
dcterms.referencesYang X., Yang S., Yang S., Hu J., Tan X. & Wang X., 2011. Effect of pH, ionic strength and temperature on sorption of Pb(II) on NKF-6 zeolite studied by batch technique, CHEM. ENG. J. 168 (86-93).spa
dcterms.referencesYilmaz B., & Ediz N., 2008. The use of raw and calcined diato-mite in cement production. CEMENT AND CONCRETE COMPOSITES 30 (3), 202-211.spa
dcterms.referencesYi-qui., Lei Z. & Xin-you Z., 2012. Investigation of low-tem-perature properties of diatomite-modified asphalt mixtures, CONSTR. BUILD. MATER., 36 (787-795).spa
dcterms.referencesZhang K., Liu Y., Tian S., Zhao E., Enhong Z., Zhang J & Liu C., 2013. Preparation of bifunctional NiPb/ZnO-diatomite-ZSM-5 catalyst and its reactive adsorption desulfurization coupling aromatization performance in FCC gasoline up-grading process, FUEL, 104 (201-207).spa
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