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1

Seshan, K. "Titanium silicate molecular sieves." Applied Catalysis A: General 81, no. 1 (1992): N3. http://dx.doi.org/10.1016/0926-860x(92)80267-g.

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2

HAGGIN, JOSEPH. "Titanium silicate molecular sieves developed." Chemical & Engineering News 69, no. 39 (1991): 31–32. http://dx.doi.org/10.1021/cen-v069n039.p031.

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3

Mann, Matthew, and Joseph Kolis. "Ba2Ti2Si2O9F2, a new titanium silicate." Acta Crystallographica Section C Crystal Structure Communications 65, no. 4 (2009): i17—i19. http://dx.doi.org/10.1107/s0108270109007677.

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Sych, O. Ya, Yu M. Kilivnik, M. M. Pop, H. V. Vasylyeva, V. Yu Lazur, and O. H. Okunev. "Investigation of radiation resistance of adsorbents using the 90Sr – source." Himia, Fizika ta Tehnologia Poverhni 15, no. 1 (2024): 94–101. http://dx.doi.org/10.15407/hftp15.01.094.

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Purifying aqueous solutions from radioactive contamination is an extremely relevant scientific topic today. Many organic and inorganic adsorbents can be recommended for the adsorption of heavy metal ions and radionuclides from aqueous solutions, or as carriers for storage and disposal of radioactive waste. Since radionuclides are sources of ionizing radiation, the radiation resistance of the adsorbent is an important characteristic. These studies aim to investigate the titanium silicate behavior and its adsorption properties' changes or their invariability in the field of intense β-radiation.
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5

Bolshakov, V. I., Yu L. Savin, O. P. Prykhodko, L. S. Savin, and V. M. Kulbashnyi. "PHYSIC AND CHEMICAL BASIS FOR THE INVOLVEMENT OF D-ELEMENTS OF THE FOURTH GROUP (TITANIUM, ZIRCONIUM, HAFNIUM) IN THE SYNTHESIS OF BUILDING AND SILICATE MATERIALS." Science and Transport Progress, no. 20 (February 25, 2008): 99–101. http://dx.doi.org/10.15802/stp2008/16725.

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In the paper the studies of physico-chemical grounds of involving the fourth group elements (titanium, zirconium, hafnium) for syntheses of construction silicate materials are presented. The physico-chemical approach proposed allows involving the great group of technogenic titanium-containing semi-products, concentrates, slags and slimes for production of construction silicate materials and manufacture the products and building structures.
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6

Fan, Helin, Dengfu Chen, Tao Liu, et al. "Crystallization Behaviors of Anosovite and Silicate Crystals in High CaO and MgO Titanium Slag." Metals 8, no. 10 (2018): 754. http://dx.doi.org/10.3390/met8100754.

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Electric-furnace smelting has become the dominant process for the production of the titanium slag from ilmenite in China. The crystallization behaviors of anosovite and silicate crystals in the high CaO and MgO titanium slag were studied to insure smooth operation of the smelting process and the efficient separation of titanium slag and metallic iron. The crystallization behaviors were studied by a mathematical model established in this work. Results show that the crystallization order of anosovite and silicate crystals in high CaO and MgO titanium slag during cooling is: Al2TiO5 > Ti3O5 &g
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7

Lee, Seungjae, Jaehyun Kim, and Kijung Yong. "Growth and Characterization of Titanium Silicate Nanofilms for Gate Oxide Applications." Journal of Nanoscience and Nanotechnology 8, no. 2 (2008): 577–83. http://dx.doi.org/10.1166/jnn.2008.a206.

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Atomic layer chemical vapor deposition (ALCVD) of titanium silicate nanofilms using a precursor combination of tetrakis-diethylamido-titanium (Ti(N(C2H5)2)4) and tetra-n-butyl-orthosilicate (Si(OnBu)4) was studied for high dielectric gate oxides. ALCVD temperature window in our study was 170–210 °C with a growth rate of 0.8 Å/cycle. We investigated the effects of deposition conditions, such as deposition temperature, pulse time of precursor and purge injection, on the titanium silicate nanofilm growth. The saturated composition of Ti/(Ti+Si) ratio was 0.6 and impurity concentrations were less
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8

Kylivnik, Yu M., V. V. Tryshyn, M. V. Strilchuk, et al. "The titanium silicate influence on the Zn(II) and Sr(II) migration in the aquatic environment." Nuclear Physics and Atomic Energy 21, no. 3 (2020): 249–55. http://dx.doi.org/10.15407/jnpae2020.03.249.

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The aim of the present work is titanium silicate influence on the zinc and strontium migration in the aquatic environment. The adsorption capacity of titanium silicate toward zinc and strontium ions was investigated. With the aid of a fluorescent X-ray analyzer and energy dispersive spectroscopy the composition of the sorbent formed was determined as well as zinc and strontium presence on the surface of the sorbent after the sorption process. It was shown, that adsorption of zinc and strontium by titanium silicate strongly depends on time of interaction and solution acidity and increases with
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9

P. Thattil, Preeja, and A. Leema Rose. "FABRICATION AND STRUCTURAL CHARACTERIZATION OF SrSiO3/TiO2 PHOTOCATALYST FOR THE DEGRADATION OF CONGO RED DYE UNDER SUNLIGHT." Rasayan Journal of Chemistry 15, no. 01 (2022): 651–568. http://dx.doi.org/10.31788/rjc.2022.1516821.

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Titanium dioxide and strontium silicate-loaded titanium dioxide photocatalysts are prepared via a simple chemical precipitation technique using titanium tetrachloride as the precursor solution in an alkaline medium. Different characterization techniques such as x-ray diffraction analyses, field emission scanning electron microscopic analyses, transmission electron microscopic analyses, energy dispersive x-ray analyses and bet surface area studies are carried out for the synthesized photocatalysts. The enhancement in the photocatalytic activity of the strontium silicate loaded titanium dioxide
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10

Sava, Bogdan Alexandru, Adriana Diaconu, Luminita Daniela Ursu, et al. "Ecological Silicate Glasses." Advanced Materials Research 39-40 (April 2008): 667–70. http://dx.doi.org/10.4028/www.scientific.net/amr.39-40.667.

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The investigated ecological glasses with no toxic compounds, such as BaO, PbO, As2O3, As2O5, fluorine, CdS and CdSe in their composition are located in ternary and quaternary oxide systems: ZnO-SiO2-TiO2 and SiO2-R'2O-R''O-R'''O2, where R' is Na or K, R'' is Ca or Mg and R''' is Zr or Ti. The first system contains P2O5, ZnO and TiO2 in order to obtain opal glasses, without fluorine compounds. The second system replaces the barium oxide and lead oxide with potassium, magnesium, zirconium and titanium oxides, for materials like lead free crystals. The raw materials can be replaced by silicate or
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11

Savka, Kh, Yu Kilivnik, I. Mironyuk, et al. "Ba2+ ions adsorption by titanium silicate." Chemical Physics Impact 6 (June 2023): 100151. http://dx.doi.org/10.1016/j.chphi.2022.100151.

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12

Mortier, W. "1992 Breck Award for Titanium Silicate." Microporous Materials 1, no. 2 (1993): 161–62. http://dx.doi.org/10.1016/0927-6513(93)80022-m.

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13

Zhang, Shicheng, Takaomi Kobayashi, Yoshio Nosaka, and Nobuyuki Fujii. "Photocatalytic property of titanium silicate zeolite." Journal of Molecular Catalysis A: Chemical 106, no. 1-2 (1996): 119–23. http://dx.doi.org/10.1016/1381-1169(95)00263-4.

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14

Xu, Runsheng, Wei Wang, Weilin Chen, Bin Jia, and Zhihui Xu. "3D Microstructure and Micromechanical Properties of Minerals in Vanadium-Titanium Sinter." High Temperature Materials and Processes 38, no. 2019 (2019): 101–12. http://dx.doi.org/10.1515/htmp-2017-0181.

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AbstractTo investigate the structural characteristics and mechanical properties of minerals in vanadium-titanium sinter, the 3D microstructures of the sinter were reconstructed by serial sectioning in conjunction with computer-aided 3D reconstruction techniques The results show that hematite and magnetite in vanadium-titanium sinter will grow along the longitudinal axis direction and act as a scaffold. The size of magnetite crystals in vanadium-titanium sinter is much smaller than that in traditional sinter. The calcium ferrite in vanadium-titanium sinter is columnar-like, while that in tradit
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15

Jafar, N., S. R. Nurhawaisyah, S. Widodo, C. A. Chalik, and M. H. Wakila. "Mineralogical Study of Bauxite of Kenco Area, Landak District, West Kalimantan Province, Indonesia." IOP Conference Series: Earth and Environmental Science 1134, no. 1 (2023): 012025. http://dx.doi.org/10.1088/1755-1315/1134/1/012025.

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Abstract Indonesia is a country with a tropical climate that allows for high levels of weathering. Bauxite is the result of weathering rocks that have high aluminum content, low iron content, and little quartz content. The formation of bauxite deposits is controlled by source rock which is rich in Al element, tropical climatic conditions, and geomorphological conditions that allow the formation of the accumulation of weathered source rock products. The altered silicate minerals due to weathering result in the silica element being released from the crystal bonds and some iron are released so th
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16

Markowska-Szczupak, Agata, Krzysztof Ulfig, Barbara Grzmil, and Antoni Morawski. "A preliminary study on antifungal effect of TiO2-based paints in natural indoor light." Polish Journal of Chemical Technology 12, no. 4 (2010): 53–57. http://dx.doi.org/10.2478/v10026-010-0050-x.

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A preliminary study on antifungal effect of TiO2-based paints in natural indoor light The antifungal activity of four commercial photocatalytic paints (KEIM Ecosil ME, Titanium FA, Photo Silicate and Silicate D) in natural indoor light was investigated. The paints contained TiO2 in rutile and anatase crystalline forms as evidenced by means of the X-ray diffraction analysis. In most cases the paints inhibited growth of fungi viz. Trichoderma viride, Aspergillus niger, Coonemeria crustacea, Eurotium herbariorum, and Dactylomyces sp. The KEIM Ecosil ME paint displayed the highest antifungal effec
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17

Ghaith, El-Sayed, Toshihiro Kasuga, and Masayuki Nogami. "Amorphous Calcium Silicate Coating on Metallic Titanium." Advanced Materials Research 11-12 (February 2006): 235–38. http://dx.doi.org/10.4028/www.scientific.net/amr.11-12.235.

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Amorphous calcium silicate coating on a metallic titanium substrate for hard tissue replacement was prepared by a sol-gel method. Calcium silicate film was deposited on a titanium substrate by a spin-coating technique and subsequently heated at 500°C for 2 h in air. The deposited film, which was dense, had thickness of about 800 nm and strongly adhered to the substrate. Biomimetic apatite-forming ability of the deposited films was examined by soaking in simulated body fluid (SBF). Thin film X-ray diffractometry and scanning electron microscopy showed the formation of apatite on the surface aft
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18

LEE, SEUNGJAE, and KIJUNG YONG. "SELF-LIMITING GROWTH OF TITANIUM SILICATE AND EFFECTS OF THERMAL ANNEALING ON THE ELECTRICAL PROPERTIES OF TITANIUM SILICATE/SiO2." Surface Review and Letters 14, no. 05 (2007): 921–25. http://dx.doi.org/10.1142/s0218625x07010433.

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Titanium silicate thin films were deposited using self-limiting atomic layer growth technique. Grown films showed smooth film surface morphology. As deposited, 8 nm-thick film surface showed an RMS value of 0.43 nm and annealed film showed a smoother surface having RMS of 0.2 nm. Electrical properties of titanium silicate/ SiO 2 bilayer were investigated using capacitance–voltage (C–V) and leakage current-voltage (I–V) measurements. The grown films showed high dielectric properties with low impurity contents and low leakage currents. Upon annealing at 800°C, capacitance slightly decreased, whi
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19

GORSHKOV, A. I., E. N. GRIBANOV, O. YU KONOPELKO, and N. A. KUZNETSOVA. "NATURE AND MORPHOLOGY OF PROTECTIVE COATINGS ON TITANIUM PRODUCED BY THE ELECTROCHEMICAL METHOD." World of transport and technological machines 3(82), no. 3 (2023): 23–30. http://dx.doi.org/10.33979/2073-7432-2023-3-3(82)-23-30.

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In the paper, protective coatings on titanium were obtained by an electrochemical method using electrolytes based on ethylene glycol, glycerin, ammonium fluoride, and sodium silicate. The surface morphology was studied by metallographic and scanning probe microscopy (SPM), the nature of the coatings obtained was proved by infrared spectroscopy (IR-) and Raman spectroscopy (RS-). The surface morphology of the original sample is a set of grooves (distance 10-140 µm according to SPM and metallography). After electrochemical treatment, the surface mor-phology changed: a system of pores up to 30 nm
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20

Zhou, Siyang, Youxue Zhang, and Noriko T. Kita. "Diffusive titanium isotope fractionation in silicate melts." Earth and Planetary Science Letters 651 (February 2025): 119176. https://doi.org/10.1016/j.epsl.2024.119176.

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21

Mirajkar, S. P., A. Thangaraj, and V. P. Shiralkar. "Sorption properties of titanium silicate molecular sieves." Journal of Physical Chemistry 96, no. 7 (1992): 3073–79. http://dx.doi.org/10.1021/j100186a055.

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22

Xie, Youtao, Xuanyong Liu, Paul K. Chu, Xuebin Zheng, and Chuanxian Ding. "Bioactive titanium-particle-containing dicalcium silicate coating." Surface and Coatings Technology 200, no. 5-6 (2005): 1950–53. http://dx.doi.org/10.1016/j.surfcoat.2005.08.070.

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23

Bhaumik, Asim, and Takashi Tatsumi. "Selective Dihydroxylation over Titanium Silicate Molecular Sieves." Journal of Catalysis 176, no. 2 (1998): 305–9. http://dx.doi.org/10.1006/jcat.1998.2055.

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24

Rosenthal, Allan B., and Stephen H. Garofalini. "Molecular dynamics study of amorphous titanium silicate." Journal of Non-Crystalline Solids 107, no. 1 (1988): 65–72. http://dx.doi.org/10.1016/0022-3093(88)90094-4.

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25

Zhang, Lan, Xiaoyan Huang, and Yong Han. "Formation mechanism and cytocompatibility of nano-shaped calcium silicate hydrate/calcium titanium silicate/TiO2 composite coatings on titanium." Journal of Materials Chemistry B 4, no. 41 (2016): 6734–45. http://dx.doi.org/10.1039/c6tb01699e.

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Compared with as-MAOed TiO<sub>2</sub>, the triple-layered coating (HT2h) comprised of an outer layer of nanoleaf Ca<sub>3</sub>Si<sub>6</sub>O<sub>15</sub>(H<sub>2</sub>O)<sub>7</sub>, a middle layer of nanograined Ca(Si<sub>1.9</sub>Ti<sub>0.1</sub>)O<sub>5</sub> and an inner layer of microporous TiO<sub>2</sub> can significantly improve the behaviors of osteoblasts.
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26

Liao, Lina, and Peng Zhang. "Preparation and Characterization of Polyaluminum Titanium Silicate and its Performance in the Treatment of Low-Turbidity Water." Processes 6, no. 8 (2018): 125. http://dx.doi.org/10.3390/pr6080125.

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Using conventional coagulant, low turbidity water is difficult to achieve standard. This research uses aluminum chloride, titanium tetrachloride, and sodium silicate as raw materials for the preparation of polyaluminum titanium silicate chloride (PATC). PATC is used to treat low turbidity. The synthetic PATC showed the best coagulating effect in treated water under the following experimental conditions: Reaction temperature of 50 °C, and n(Ti)/n(Al), n(-OH)/n(Ti+Al), and n(Si)/n(Ti+Al) were 0.3, 0.2, and 1.0, respectively. The species distribution and the transformation of PATC showed that the
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27

Hall, S. M., J. S. Beard, C. J. Potter, et al. "The Coles Hill Uranium Deposit, Virginia, USA: Geology, Geochemistry, Geochronology, and Genetic Model." Economic Geology 117, no. 2 (2022): 273–304. http://dx.doi.org/10.5382/econgeo.4874.

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Abstract The Coles Hill uranium deposit, with an indicated resource of about 130 Mlb of U3O8, is the largest unmined uranium deposit in the United States. The deposit is hosted in the Taconian (approx. 480–450 Ma) Martinsville igneous complex, which consists of the Ordovician Leatherwood Granite (granodiorite) and the Silurian Rich Acres Formation (diorite). The host rock was metamorphosed to orthogneiss during the Alleghanian orogeny (approx. 325–260 Ma), when it also underwent dextral strike-slip movement along the Brookneal shear zone. During the Triassic, extensional tectonics led to the d
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28

Shaybadullina, Arina, Yuliya Ginchitskaya, and Olga Smirnova. "Decorative Coating Based on Composite Cement-Silicate Matrix." Solid State Phenomena 276 (June 2018): 122–27. http://dx.doi.org/10.4028/www.scientific.net/ssp.276.122.

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The designed is a cement-silicate coating based on liquid sodium glass and Portland cement, modified with a complex ultra-and nanodispersed additive that includes titanium dioxide, expanded perlite sand and a dispersion of multilayered carbon nanotubes. The advantage of the designed coating is the use of Portland cement as a silicizer instead of conventionally used zinc oxide. The presented cement-silicate coating is water resistant, steam and gas proof, has good adhesion to the base and an increased durability, providing 4-5 times longer service life than those of the existing analogs. The pr
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29

Lin, Christopher C. H., Mohsen Danaie, David Mitlin, and Steven M. Kuznicki. "Palladium Nanoparticles Formed on Titanium Silicate ETS-10." Journal of Nanoscience and Nanotechnology 11, no. 3 (2011): 2537–39. http://dx.doi.org/10.1166/jnn.2011.3562.

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Brandão, Paula, Anabela Valente, Andreas Philippou, Artur Ferreira, Michael W. Anderson, and João Rocha. "A novel large-pore framework titanium silicate catalyst." J. Mater. Chem. 12, no. 12 (2002): 3819–22. http://dx.doi.org/10.1039/b204135a.

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31

Kundu, R. S., Meenakshi Dult, R. Punia, Rajesh Parmar, and N. Kishore. "Titanium induced structural modifications in bismuth silicate glasses." Journal of Molecular Structure 1063 (April 2014): 77–82. http://dx.doi.org/10.1016/j.molstruc.2014.01.057.

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32

Dult, Meenakshi, R. S. Kundu, S. Murugavel, R. Punia, and N. Kishore. "Conduction mechanism in bismuth silicate glasses containing titanium." Physica B: Condensed Matter 452 (November 2014): 102–7. http://dx.doi.org/10.1016/j.physb.2014.07.004.

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33

Bhaumik, Asim, Sujit Samanta, and Nawal Kishor Mal. "Highly active disordered extra large pore titanium silicate." Microporous and Mesoporous Materials 68, no. 1-3 (2004): 29–35. http://dx.doi.org/10.1016/j.micromeso.2003.12.005.

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34

Dyadenko, M. V., and A. I. Gelai. "Radio-Transparent Materials Based on Titanium Silicate Glass." Glass and Ceramics 74, no. 7-8 (2017): 273–77. http://dx.doi.org/10.1007/s10717-017-9978-0.

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35

Hoon Rim, Young, Chul Ho Song, Jae Hyeon Ko, and Yong Suk Yang. "Ionic Conduction in Barium Calcium Titanium Silicate Glasses." Journal of the Physical Society of Japan 79, Suppl.A (2010): 129–32. http://dx.doi.org/10.1143/jpsjs.79sa.129.

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36

Dickinson, James E., and Paul C. Hess. "Rutile solubility and titanium coordination in silicate melts." Geochimica et Cosmochimica Acta 49, no. 11 (1985): 2289–96. http://dx.doi.org/10.1016/0016-7037(85)90229-7.

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Reddy, J. Sudhakar, and Abdelhamid Sayari. "Oxidation of propylamine over titanium silicate molecular sieves." Applied Catalysis A: General 128, no. 2 (1995): 231–42. http://dx.doi.org/10.1016/0926-860x(95)00084-4.

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38

S, Salprima Yudha, Morina Adfa, Swadexi Istiqphara, and Muhamad Alvin Reagen. "Bismuth Silicate/Silica-Titania Synthesis from In Situ Decomposition of Oil Palm Leaves as Silica Source." Science and Technology Indonesia 8, no. 3 (2023): 397–402. http://dx.doi.org/10.26554/sti.2023.8.3.397-402.

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In this work, bismuth silicate-titania has been synthesized in two stages by utilizing bismuth oxynitrate as an elemental source of bismuth, oil palm leaves (OPL) as a source of silica and titanium tetraisopropoxide (TTIP) as source of titania (TiO2). In the first stage, bismuth silicate/silica (Bi4Si3O12/SiO2) was formed, which occurs due to the in-situ decomposition of palm leaves and reacts directly with the bismuth precursor at high temperatures (900oC). The reaction could possibly occur through a solid-state reaction mechanism between bismuth oxide and silica or through a more complex mec
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39

Yastrebinskii, R. N., and A. A. Karnauhov. "Composition Material for Radiation Protection Based on Modified Disperse Titanium Hydride and Silicate Connecting." Solid State Phenomena 299 (January 2020): 163–68. http://dx.doi.org/10.4028/www.scientific.net/ssp.299.163.

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This paper presents an analysis of known radiation protection materials. The prospects of using materials based on titanium hydride are shown. The possibility of obtaining finely ground titanium hydride with a high content of atomic hydrogen in its structure has been established. The features of the physicochemical interaction of dispersed titanium hydride and heavy flint, after hydrolysis in the alkaline environment of the organosilicon modifier – tetraethoxysilane, are revealed. The possibility of obtaining a thermostable low-activated composite material based on dispersed titanium hydride f
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40

Hervig, R. L., J. V. Smith, and J. B. Dawson. "Lherzolite xenoliths in kimberlites and basalts: petrogenetic and crystallochemical significance of some minor and trace elements in olivine, pyroxenes, garnet and spinel." Transactions of the Royal Society of Edinburgh: Earth Sciences 77, no. 3 (1986): 181–201. http://dx.doi.org/10.1017/s026359330001083x.

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ABSTRACTElectron and ion microprobe analyses for P, Si, Ti, Al, Cr, V, Sc, Fe, Mn, Mg, Ni, Co, Ca, Sr, Na, K and Li in olivine, pyroxenes and garnet in forty-two cold and twelve hot garnet lherzolites from kimberlites, nine spinel lherzolites from kimberlites and eighteen from alkali basalts, and one cold garnet lherzolite from the Malaita alnöite, are compared with published data for minerals occurring in lherzolite, harzburgite and eclogite xenoliths, for silicate megacrysts in kimberlites, and for silicate inclusions in diamonds. Despite wide ranges in the chemistry of minerals from garnet
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41

Zhou, Wenbo, Tingle Li, Dong Lan, Changyu Sun, and Songtao Yang. "Influence of TiO2, Al2O3, and Basicity on Viscosity and Structure of High Titanium-Bearing Blast Furnace Slag." Materials 16, no. 7 (2023): 2575. http://dx.doi.org/10.3390/ma16072575.

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The viscosity of high-titanium blast furnace slag with different TiO2 content, Al2O3 content, and basicity was measured at 1653–1773 K using the rotational cylinder method. The phase composition of the slag is measured by XRD. Phase diagram of the slags is calculated by FactSage software. Ionic network structure of the slags is analyzed by FT–IR. Results show that TiO2 depolymerizes the silicate network structure, reducing viscosity at high temperature, while increasing Al2O3 content generates a more complicated silicate, increasing viscosity. Basicity affects viscosity, with higher basicity r
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42

Griffin, William, Sarah Gain, Martin Saunders, et al. "Nitrogen under Super-Reducing Conditions: Ti Oxynitride Melts in Xenolithic Corundum Aggregates from Mt Carmel (N. Israel)." Minerals 11, no. 7 (2021): 780. http://dx.doi.org/10.3390/min11070780.

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Titanium oxynitrides (Ti(N,O,C)) are abundant in xenolithic corundum aggregates in pyroclastic ejecta of Cretaceous volcanoes on Mount Carmel, northern Israel. Petrographic observations indicate that most of these nitrides existed as melts, immiscible with coexisting silicate and Fe-Ti-C silicide melts; some nitrides may also have crystallized directly from the silicide melts. The TiN phase shows a wide range of solid solution, taking up 0–10 wt% carbon and 1.7–17 wt% oxygen; these have crystallized in the halite (fcc) structure common to synthetic and natural TiN. Nitrides coexisting with sil
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43

Zhevtun, Ivan, Pavel Gordienko, Yury Kulchin, et al. "Influence of Titanium Surface Porosity on Adhesive Strength of Coatings Containing Calcium Silicate." Materials 13, no. 20 (2020): 4493. http://dx.doi.org/10.3390/ma13204493.

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Titanium-based alloys are widely used in aerospace engineering. They have good mechanical and corrosion properties but, in some cases, the material itself or the coating should meet some additional requirements. For example, it may be a requirement of high reflectance to provide effective temperature control. Wollastonite is a promising component for reflective coatings because it improves both their whiteness and mechanical properties. This paper presents the results of studying the composition, the structure and the adhesive strength of wollastonite-containing silicate coatings to titanium s
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44

Chatterjee, Rupak, Avik Chowdhury, Sudip Bhattacharjee, Rajaram Bal, and Asim Bhaumik. "Selective Styrene Oxidation Catalyzed by Phosphate Modified Mesoporous Titanium Silicate." Chemistry 5, no. 1 (2023): 589–601. http://dx.doi.org/10.3390/chemistry5010042.

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Selective oxidation of organics over an efficient heterogeneous catalyst under mild liquid phase conditions is a very demanding chemical reaction. Herein, we first report the modification of the surface of mesoporous silica MCM-41 material by phosphate for the efficient incorporation of Ti(IV) in the silica framework to obtain highly ordered 2D hexagonal mesoporous material STP-1. STP-1 has been synthesized by using tetraethyl orthosilicate, triethyl phosphate, and titanium isopropoxide as Si, P, and Ti precursors, respectively, in the presence of cationic surfactant cetyltrimethylammonium bro
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45

Leca, Minodora, and Ovidiu Segarceanu. "INFLUENCE OF FILM THICKNESS, TEMPERATURE AND INORGANIC FILLERS ON THE VOLUME ELECTRIC RESISTIVITY OF HEAT-CURING EPOXY VARNISH." SOUTHERN BRAZILIAN JOURNAL OF CHEMISTRY 1, no. 1 (1993): 97–105. http://dx.doi.org/10.48141/sbjchem.v1.n1.1993.100_1993.pdf.

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The dependence of the volume electric resistivity of heat-during epoxy varnish on the film thickness, temperature, and nature of inorganic fillers for films obtained by spraying on steel supports cured for 30 minutes at l60 °C was determined. Film thicknesses ranged between 5 and 56 µm, temperature between 24 °C and l40 °C, and the fillers were rutile type titanium micronizes mica, colloidal aluminium oxide, and aluminium silicate. The experimental data, treated statistically by the Linear regression method, shows a linear dependence of the volume electric resistivity on the film thickness and
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46

Abdul Azam, Farah Atiqah, Hamisah Ismail, Roslinda Shamsudin, Zalita Zainuddin, and Muhammad Azmi Abdul Hamid. "Characterizations on Morphology and Adhesion of Calcium Silicate Coating on Ti6Al4V Substrate." Key Engineering Materials 694 (May 2016): 83–87. http://dx.doi.org/10.4028/www.scientific.net/kem.694.83.

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The morphology and surface topography of calcium silicate coated on Ti6Al4V implant were studied using field emission scanning electron microscopy (FESEM) and X-ray diffraction analysis (XRD) respectively. The surface of titanium alloy plates was mechanically ground with 320, 800 and 1200 grits of SiC abrasive paper followed by surface polishing into mirror-like finish. The synthesized β-CaSiO3 was deposited onto the Ti6Al4V substrate using electron beam evaporator. After coating, calcium silicate was heat treated at 500 °C for 1 hour. Characterization of the calcium silicate coated on Ti6Al4V
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Peng, Xinxin, Changjiu Xia, Min Lin, et al. "Chlorohydrination of allyl chloride with HCl and H2O2 catalyzed by hollow titanium silicate zeolite to produce dichloropropanol." Green Chemistry 19, no. 5 (2017): 1221–25. http://dx.doi.org/10.1039/c6gc03005j.

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A novel chlorohydrination process of allyl chloride with HCl and H<sub>2</sub>O<sub>2</sub> catalyzed by hollow titanium silicate zeolite has been developed, overcoming the significant drawbacks of traditional Cl<sub>2</sub>-based route.
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ELDEWIK, Abdussalam, K. M. KREDDAN, and A. El-GEEB. "PHASE TRANSFORMATION OF ION-EXCHANGED TITANO SILICATE MATERIAL." Academy Journal For Basic and Applied Sciences 7, no. 1 (2025): 1–6. https://doi.org/10.5281/zenodo.15449165.

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The phase transformation and thermal stability of&nbsp; Co<sup>2+</sup> and Cu<sup>2+</sup>-exchanged titanium silicate ETS-10 material, prepared by using cobalt (II) and copper (II) nitrate solution, and subsequent calcinations at different temperatures and cooled down to room temperature, were investigated by&nbsp; X-ray Powder Diffraction (XRD), Scanning Electronic Microscope (SEM), Elemental and Thermal Analysis. It found that the metal (II) exchanged ETS-10 material exhibits a high thermal stability at 723K. The microspore system of Co<sup>2+</sup>-exchanged ETS-10 material changes into N
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Powell, Diana, Xi Zhang, Peter Gao, and Vivien Parmentier. "Formation of Silicate and Titanium Clouds on Hot Jupiters." Astrophysical Journal 860, no. 1 (2018): 18. http://dx.doi.org/10.3847/1538-4357/aac215.

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Buga, Csaba, Mátyás Hunyadi, Zoltán Gácsi, et al. "Calcium silicate layer on titanium fabricated by electrospray deposition." Materials Science and Engineering: C 98 (May 2019): 401–8. http://dx.doi.org/10.1016/j.msec.2019.01.011.

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