Nowitschok (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "Nowitschok" in German language version.

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acs.org

cen.acs.org

armscontrol.org

bbc.co.uk

news.bbc.co.uk

  • World: Asia-Pacific US dismantles chemical weapons. 9. August 1999 (bbc.co.uk [abgerufen am 15. März 2018]).

bbc.com

bundesregierung.de

cas.org

commonchemistry.cas.org

chemicke-listy.cz

  • Emil Halámek, Zbyněk Kobliha: Potential Chemical Warfare Agents. In: Chemické listy. Band 105, Nr. 5, 15. Juni 2011, S. 323–333 (chemicke-listy.cz).

chemspider.com

cnn.com

edition.cnn.com

derstandard.at

diepresse.com

doi.org

  • Robin Black: Chemical Warfare Toxicology. 2016, CHAPTER 1:Development, Historical Use and Properties of Chemical Warfare Agents, S. 1–28, doi:10.1039/9781782622413-00001.
  • Jiri Bajgar, Jiri Kassa, Josef Fusek, Kamil Kuca, Daniel Jun: Handbook of Toxicology of Chemical Warfare Agents. Academic Press, San Diego 2009, ISBN 978-0-12-374484-5, CHAPTER 24 – Other Toxic Chemicals as Potential Chemical Warfare Agents, S. 333, doi:10.1016/b978-0-12-374484-5.00024-9.
  • Steven L. Hoenig: Compendium of Chemical Warfare Agents. Springer, New York 2006, S. 77–128, doi:10.1007/978-0-387-69260-9.
  • Steven L. Hoenig: Compendium of Chemical Warfare Agents. Springer, New York 2006, S. 79, doi:10.1007/978-0-387-69260-9.have recently been cited in the literature with reference to their chemical structure but with no analytical data.
  • Beeta Balali-Mood: Basic and Clinical Toxicology of Organophosphorus Compounds. Springer, London 2014, ISBN 978-1-4471-5625-3, Chemistry and Classification of OP Compounds, S. 1–23, doi:10.1007/978-1-4471-5625-3_1.
  • W. E. White: Effects of Chemical Reactivity on the Toxicity of Phosphorus Fluoridates. In: SAR and QSAR in Environmental Research. Band 10, Nr. 2-3. Taylor & Francis, 1999, ISSN 1062-936X, S. 207–213, doi:10.1080/10629369908039176, PMID 10491850. Die Strukturen von Hoenig entsprechen Nr. 12 in Figur 2 auf S. 210, die Toxizitäts-Reaktivitäts-Beziehung wird in Figur 3, S. 211 dargestellt. Die relative Energie für die Zwischenstufen sind zu hoch und sie reagieren deshalb träger. G-Kampfstoffe wie Sarin und Soman liegen dagegen nahe dem Optimum.
  • Lars Carlsen: After Salisbury Nerve Agents Revisited. In: Molecular Informatics. Band 38, Nr. 8-9. Wiley Online Library, 2019, ISSN 1868-1743, S. 1800106, doi:10.1002/minf.201800106.
  • Richard Stone: U.K. attack shines spotlight on deadly nerve agent developed by Soviet scientists. In: Science. 2018, ISSN 0036-8075, doi:10.1126/science.aat6324.
  • Eugenie Nepovimova, Kamil Kuca: Chemical warfare agent NOVICHOK – mini-review of available data. In: Food and Chemical Toxicology. Band 121, 2018, ISSN 0278-6915, S. 343–350, doi:10.1016/j.fct.2018.09.015.
  • Yadhav A. Imrit, Hanusha Bhakhoa, Tetiana Sergeieva, Sergi Danés, Nandini Savoo, Mohamed I. Elzagheid, Lydia Rhyman, Diego M. Andrada, Ponnadurai Ramasami: A theoretical study of the hydrolysis mechanism of A-234; the suspected novichok agent in the Skripal attack. In: RSC Advances. Band 10, Nr. 47, 2020, ISSN 2046-2069, S. 27884–27893, doi:10.1039/D0RA05086E.
  • Steven L. Hoenig: Compendium of Chemical Warfare Agents. Springer, New York 2007, S. 78, doi:10.1007/978-0-387-69260-9.
  • Jan Korabecny, Ondrej Soukup, Rafael Dolezal, Katarina Spilovska, Eugenie Nepovimova, Martin Andrs, Thuy Duong Nguyen, Daniel Jun, Kamil Musilek, Marta Kucerova-Chlupacova, Kamil Kuca: From Pyridinium-based to Centrally Active Acetylcholinesterase Reactivators. In: Mini-Reviews in Medicinal Chemistry. Band 14, Nr. 3, S. 215–221, doi:10.2174/1389557514666140219103138.
  • Gerald Bauer, Agnes Wildauer, Günter Povoden, Benjamin Menzi und Christophe Curty: Crime scene Novichok - optical detection of fourth-generation agents (FGAs) using handheld forensic light sources. Forensic Sciences 3, Nr. 2, S. 231–244. https://doi.org/10.3390/forensicsci3020017
  • S. E. Hosseini, H. Saeidian, A. Amozadeh, M. T. Naseri, M. Babri: Fragmentation pathways and structural characterization of organophosphorus compounds related to the Chemical Weapons Convention by electron ionization and electrospray ionization tandem mass spectrometry. In: Rapid Communications in Mass Spectrometry. Band 30, Nr. 24, 5. Oktober 2016, doi:10.1002/rcm.7757.

dw.com

euronews.com

faz.net

google.de

books.google.de

  • Stephanie Fitzpatrick: Novichok. In Eric A. Cody, James J. Wirtz, Jeffrey A. Larsen (Hrsg.): Weapons of Mass Destruction: An Encyclopedia of Worldwide Policy, Technology, and History. ABC Clio, Santa Barbara 2005, ISBN 1-85109-490-3, S. 201–202 (eingeschränkte Vorschau in der Google-Buchsuche).
  • Vadim J. Birstein: The perversion of knowledge: the true story of Soviet science. Westview, Boulder 2004, ISBN 0-8133-4280-5, S. 95 (eingeschränkte Vorschau in der Google-Buchsuche).

handelsblatt.com

kommersant.ru

meduza.io

merkur.de

nap.edu

  • Commission on Life Sciences: Possible Long-Term Health Effects of Short-Term Exposure to Chemical Agents. Band 1. The National Academies Press, 1982, S. 7, 22, 29, E3 (nap.edu).

nih.gov

ncbi.nlm.nih.gov

  • M. Pohanka: Diagnoses of Pathological States Based on Acetylcholinesterase and Butyrylcholinesterase. In: Curr Med Chem. Band 27, Nr. 18, 2020, S. 2994–3011. PMID 30706778
  • W. E. White: Effects of Chemical Reactivity on the Toxicity of Phosphorus Fluoridates. In: SAR and QSAR in Environmental Research. Band 10, Nr. 2-3. Taylor & Francis, 1999, ISSN 1062-936X, S. 207–213, doi:10.1080/10629369908039176, PMID 10491850. Die Strukturen von Hoenig entsprechen Nr. 12 in Figur 2 auf S. 210, die Toxizitäts-Reaktivitäts-Beziehung wird in Figur 3, S. 211 dargestellt. Die relative Energie für die Zwischenstufen sind zu hoch und sie reagieren deshalb träger. G-Kampfstoffe wie Sarin und Soman liegen dagegen nahe dem Optimum.
  • Y. B. Tan, I. R. Tay, L. Y. Loy, K. F. Aw, Z. L. Ong, S. Manzhos: A Scheme for Ultrasensitive Detection of Molecules with Vibrational Spectroscopy in Combination with Signal Processing. In: Molecules. Band 24, Nr. 4, 21. Feb 2019, S. 776. PMID 30795561
  • Y. Nakano, T. Imasaka, T. Imasaka: Generation of a Nearly Monocycle Optical Pulse in the Near-Infrared Region and Its Use as an Ionization Source in Mass Spectrometry. In: Anal Chem. Band 92, Nr. 10, 19. Mai 2020, S. 7130–7138. PMID 32233421
  • S. P. Harvey, L. R. McMahon, F. J. Berg: Hydrolysis and enzymatic degradation of Novichok nerve agents. In: Heliyon. 6(1), 7. Jan 2020, Artikel e03153. PMID 32042950

pubchem.ncbi.nlm.nih.gov

novayagazeta.ru

nytimes.com

nzz.ch

opcw.org

orf.at

raamoprusland.nl

reuters.com

royalsocietypublishing.org

  • Hanusha Bhakhoa, Lydia Rhyman, Ponnadurai Ramasami, Theoretical study of the molecular aspect of the suspected novichok agent A234 of the Skripal poisoning. In: R. Soc. open sci. 6. Februar 2019, 6181831, (online)

scienceblog.at

spiegel.de

sueddeutsche.de

tagesschau.de

tagesspiegel.de

theatlantic.com

thebell.io

theguardian.com

washingtonpost.com

web.archive.org

welt.de

wikidata.org

zdb-katalog.de

  • W. E. White: Effects of Chemical Reactivity on the Toxicity of Phosphorus Fluoridates. In: SAR and QSAR in Environmental Research. Band 10, Nr. 2-3. Taylor & Francis, 1999, ISSN 1062-936X, S. 207–213, doi:10.1080/10629369908039176, PMID 10491850. Die Strukturen von Hoenig entsprechen Nr. 12 in Figur 2 auf S. 210, die Toxizitäts-Reaktivitäts-Beziehung wird in Figur 3, S. 211 dargestellt. Die relative Energie für die Zwischenstufen sind zu hoch und sie reagieren deshalb träger. G-Kampfstoffe wie Sarin und Soman liegen dagegen nahe dem Optimum.
  • Lars Carlsen: After Salisbury Nerve Agents Revisited. In: Molecular Informatics. Band 38, Nr. 8-9. Wiley Online Library, 2019, ISSN 1868-1743, S. 1800106, doi:10.1002/minf.201800106.
  • Richard Stone: U.K. attack shines spotlight on deadly nerve agent developed by Soviet scientists. In: Science. 2018, ISSN 0036-8075, doi:10.1126/science.aat6324.
  • Eugenie Nepovimova, Kamil Kuca: Chemical warfare agent NOVICHOK – mini-review of available data. In: Food and Chemical Toxicology. Band 121, 2018, ISSN 0278-6915, S. 343–350, doi:10.1016/j.fct.2018.09.015.
  • Yadhav A. Imrit, Hanusha Bhakhoa, Tetiana Sergeieva, Sergi Danés, Nandini Savoo, Mohamed I. Elzagheid, Lydia Rhyman, Diego M. Andrada, Ponnadurai Ramasami: A theoretical study of the hydrolysis mechanism of A-234; the suspected novichok agent in the Skripal attack. In: RSC Advances. Band 10, Nr. 47, 2020, ISSN 2046-2069, S. 27884–27893, doi:10.1039/D0RA05086E.

zeit.de