Titan(IV)-oxid (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "Titan(IV)-oxid" in German language version.

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admin.ch

admin.ch

blv.admin.ch

  • Bundesamt für Lebensmittelsicherheit und Veterinärwesen: Titandioxid. In: blv.admin.ch. 6. Mai 2021, abgerufen am 20. Februar 2022.

bgbl.de

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case.edu

engineering.case.edu

  • Erik Shepard Thiele: Scattering of electromagnetic radiation by complex microstructures in the resonant regime. 1998 (case.edu [PDF; 3,2 MB] Ph.D. Thesis, University of Pennsylvania).

ceresana.com

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dguv.de

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doi.org

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  • L. S. Dubrovinsky, N. A. Dubrovinskaia, V. Swamy, J. Muscat, N. M. Harrison, R. Ahuja, B. Holm, B. Johansson: Materials science: The hardest known oxide. In: Nature. 410. Jahrgang, Nr. 6829, 2001, S. 653–654, doi:10.1038/35070650, PMID 11287944.
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  • M. Latroche, L. Brohan, R. Marchand, M. Tournoux: New hollandite oxides: TiO2(H) and K0.06TiO2. In: Journal of Solid State Chemistry. 81. Jahrgang, Nr. 1, 1989, S. 78–82, doi:10.1016/0022-4596(89)90204-1.
  • J. Akimoto, Y. Gotoh, Y. Oosawa, N. Nonose, T. Kumagai, K. Aoki, H. Takei: Topotactic Oxidation of Ramsdellite-Type Li0.5TiO2, a New Polymorph of Titanium Dioxide: TiO2(R). In: Journal of Solid State Chemistry. 113. Jahrgang, Nr. 1, 1994, S. 27–36, doi:10.1006/jssc.1994.1337.
  • P. Y. Simons, F. Dachille: The structure of TiO2II, a high-pressure phase of TiO2. In: Acta Crystallographica. 23. Jahrgang, Nr. 2, 1967, S. 334–336, doi:10.1107/S0365110X67002713.
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  • Dubrovinskaia N A, Dubrovinsky L S., Ahuja R, Prokopenko V B., Dmitriev V., Weber H.-P., Osorio-Guillen J. M., Johansson B: Experimental and Theoretical Identification of a New High-Pressure TiO2 Polymorph. In: Phys. Rev. Lett. 87. Jahrgang, 27 Pt 1, 2001, S. 275501, doi:10.1103/PhysRevLett.87.275501, PMID 11800890.
  • Mattesini M, de Almeida J. S., Dubrovinsky L., Dubrovinskaia L, Johansson B., Ahuja R.: High-pressure and high-temperature synthesis of the cubic TiO2 polymorph. In: Phys. Rev. B. 70. Jahrgang, Nr. 21, 2004, S. 212101, doi:10.1103/PhysRevB.70.212101.
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  • T. Sekiya und S. Kurita, „Defects in Anatase Titanium Dioxide“, Nano- and Micromaterials-Advances in Materials Research, 2008, Volume 9, S. 121–141, doi:10.1007/978-3-540-74557-0_4.
  • Bora Lee, Choong-ki Lee, Cheol Seong Hwang und Seungwu Han: Influence of exchange-correlation functionals on dielectric properties of rutile TiO2, in: Current Applied Physics, Band 11 (2011), S293–S296. doi:10.1016/j.cap.2010.11.104.
  • Rebecca A. Parker: Static Dielectric Constant of Rutile (TiO2 ), 1.6-1060°K. In: Physical Review. Band 124, Nr. 6, 1961, S. 1719–1722, doi:10.1103/PhysRev.124.1719.
  • Yazdi, A. S.; Guarda, G.; Riteau, N.; Drexler, S. K.; Tardivel, A.; Couillin, I.; Tschopp, J. (2010). Nanoparticles activate the NLR pyrin domain containing 3 (Nlrp3) inflammasome and cause pulmonary inflammation through release of IL-1 and IL-1. Proceedings of the National Academy of Sciences 107 (45): S. 19449–19454, doi:10.1073/pnas.1008155107, PMC 2984140 (freier Volltext).
  • Mirco Bundschuh, Frank Seitz, Ricki R. Rosenfeldt, Ralf Schulz, Elena A. Rozhkova: Titanium Dioxide Nanoparticles Increase Sensitivity in the Next Generation of the Water Flea Daphnia magna. In: PLoS ONE. 7, 2012, S. e48956, doi:10.1371/journal.pone.0048956.
  • Kerstin Hund-Rinke, Markus Simon: Ecotoxic Effect of Photocatalytic Active Nanoparticles (TiO2) on Algae and Daphnids Environmental science and pollution research international : ESPR 13 (2006), No. 4, S. 225–232, doi:10.1065/espr2006.06.311.
  • Bettini, S. et al.: Food-grade TiO2 impairs intestinal and systemic immune homeostasis, initiates preneoplastic lesions and promotes aberrant crypt development in the rat colon. Scientific Reports 7, Article number: 40373 (2017), doi:10.1038/srep40373.
  • Pedro A Ruiz, Belen Morón u. a.: Titanium dioxide nanoparticles exacerbate DSS-induced colitis: role of the NLRP3 inflammasome. In: Gut 66, 2017, S. 1216–1224. doi:10.1136/gutjnl-2015-310297.
  • C. Kasper, J. Z. Bloh, S. Wagner, D. W. Bahnemann, T. Scheper: Untersuchungen zur Zytotoxizität von photokatalytisch aktiven Titandioxid-Nanopartikeln. In: Chemie Ingenieur Technik. 82, 2010, S. 335, doi:10.1002/cite.200900057.

europa.eu

eur-lex.europa.eu

echa.europa.eu

curia.europa.eu

ec.europa.eu

webgate.ec.europa.eu

  • Eintrag zu E 171: Titanium dioxide in der Europäischen Datenbank für Lebensmittelzusatzstoffe, abgerufen am 16. Juni 2020.

efsa.europa.eu

fr.de

  • Martin Rücker: Gefährlicher Weißmacher. Für Lebensmittel wird der krebsverdächtige Farbstoff Titandioxid verboten. In: Frankfurter Rundschau, 11. April 2022, S. 16. Online (abgerufen am 13. April 2023).

heise.de

icis.com

kronostio2.com

kronosww.com

nanopartikel.info

  • nanopartikel.info: Nanocare, Broschüre, Seite 11 ff. (deutsch, PDF; 2,7 MB).

nih.gov

ncbi.nlm.nih.gov

  • L. S. Dubrovinsky, N. A. Dubrovinskaia, V. Swamy, J. Muscat, N. M. Harrison, R. Ahuja, B. Holm, B. Johansson: Materials science: The hardest known oxide. In: Nature. 410. Jahrgang, Nr. 6829, 2001, S. 653–654, doi:10.1038/35070650, PMID 11287944.
  • Sato H. , Endo S, Sugiyama M, Kikegawa T, Shimomura O, Kusaba K: Baddeleyite-Type High-Pressure Phase of TiO2. In: Science. 251. Jahrgang, Nr. 4995, 1991, S. 786–788, doi:10.1126/science.251.4995.786, PMID 17775458.
  • Dubrovinskaia N A, Dubrovinsky L S., Ahuja R, Prokopenko V B., Dmitriev V., Weber H.-P., Osorio-Guillen J. M., Johansson B: Experimental and Theoretical Identification of a New High-Pressure TiO2 Polymorph. In: Phys. Rev. Lett. 87. Jahrgang, 27 Pt 1, 2001, S. 275501, doi:10.1103/PhysRevLett.87.275501, PMID 11800890.
  • Yazdi, A. S.; Guarda, G.; Riteau, N.; Drexler, S. K.; Tardivel, A.; Couillin, I.; Tschopp, J. (2010). Nanoparticles activate the NLR pyrin domain containing 3 (Nlrp3) inflammasome and cause pulmonary inflammation through release of IL-1 and IL-1. Proceedings of the National Academy of Sciences 107 (45): S. 19449–19454, doi:10.1073/pnas.1008155107, PMC 2984140 (freier Volltext).
  • T. C. Long, N. Saleh, R. D. Tilton, G. V. Lowry, B. Veronesi: Titanium dioxide (P25) produces reactive oxygen species in immortalized brain microglia (BV2): implications for nanoparticle neurotoxicity. In: Environmental Science & Technology. Band 40, Nummer 14, Juli 2006, S. 4346–4352. PMID 16903269.

nrel.gov

rredc.nrel.gov

nzz.ch

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pyrometallurgy.co.za

q4cdn.com

s21.q4cdn.com

reach-clp-biozid-helpdesk.de

redirecter.toolforge.org

  • Titandioxid-Nanopartikel können Darmentzündungen verstärken. In: media.uzh.ch. Universität Zürich, 19. Juli 2017, archiviert vom Original; abgerufen am 14. Oktober 2023.

rnd.de

rruff.info

  • A. El Goresy, L. Dubrovinsky, P. Gillet, G. Graup, M. Chen: Akaogiite: An ultra-dense polymorph of TiO2 with the baddeleyite-type structure, in shocked garnet gneiss from the Ries Crater, Germany. In: American Mineralogist. Band 95, 2010, S. 892–895 (englisch, rruff.info [PDF; 747 kB; abgerufen am 13. Februar 2022]).

sachtleben.de

scinexx.de

skriptorium.eu

spiegel.de

srf.ch

suva.ch

taz.de

tdma.info

tio2project.com

  • NorWhite. In: TiO2 Project. 2023, abgerufen am 13. April 2023 (englisch).
  • Die Produktion erfolgte in der Mine Titania AS im norwegischen Sokndal und die Herstellung ab 1916 in der Fabrik Kronos Titan AS im norwegischen Fredrikstad, vgl. tio2project.com (abgerufen am 13. April 2023).

tu-dortmund.de

eldorado.tu-dortmund.de

uni-freiburg.de

ruby.chemie.uni-freiburg.de

  • Univ. Freiburg Vorlesungsscript Chemie, Oxide Teil 4: Nichtstöchiometrische binäre Oxide.

usgs.gov

minerals.usgs.gov

web.archive.org

zeit.de