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  2. Chlorine trifluoride - Wikipedia

    en.wikipedia.org/wiki/Chlorine_trifluoride

    Chlorine trifluoride is an interhalogen compound with the formula ClF 3.It is a colorless, poisonous, corrosive, and extremely reactive gas that condenses to a pale-greenish yellow liquid, the form in which it is most often sold (pressurized at room temperature).

  3. Template reaction - Wikipedia

    en.wikipedia.org/wiki/Template_reaction

    The term is mainly used in coordination chemistry. The template effects emphasizes the pre-organization provided by the coordination sphere, although the coordination modifies the electronic properties (acidity, electrophilicity, etc.) of ligands. [1] An early example is the dialkylation of a nickel dithiolate: [2]

  4. List of inorganic compounds - Wikipedia

    en.wikipedia.org/wiki/List_of_inorganic_compounds

    Download as PDF; Printable version; In other projects ... traditional names have also been kept where they are in wide use or of significant ... OsF 7, OF 2, PdF 2 ...

  5. Chlorine trifluoride dioxide - Wikipedia

    en.wikipedia.org/wiki/Chlorine_trifluoride_dioxide

    Print/export Download as PDF; Printable version; In other projects Wikidata item; Appearance. move to sidebar hide. Chlorine trifluoride dioxide ...

  6. Trifluoromethyl group - Wikipedia

    en.wikipedia.org/wiki/Trifluoromethyl_group

    Trifluoromethyl group covalently bonded to an R group. The trifluoromethyl group is a functional group that has the formula-CF 3.The naming of is group is derived from the methyl group (which has the formula -CH 3), by replacing each hydrogen atom by a fluorine atom.

  7. Chlorine fluoride - Wikipedia

    en.wikipedia.org/wiki/Chlorine_fluoride

    ClF ClF 3 ClF 5; Systematic name: Chlorine monofluoride: Chlorine trifluoride: Chlorine pentafluoride: Molar mass: 54.45 g/mol 92.45 g/mol 130.45 g/mol CAS number

  8. Interhalogen - Wikipedia

    en.wikipedia.org/wiki/Interhalogen

    It is used in the manufacture of uranium hexafluoride. Bromine trifluoride (BrF 3 ) is a yellow-green liquid that conducts electricity — it self-ionises to form [BrF 2 ] + and [BrF 4 ] − . It reacts with many metals and metal oxides to form similar ionised entities; with other metals, it forms the metal fluoride plus free bromine and oxygen ...

  9. Pyrophoricity - Wikipedia

    en.wikipedia.org/wiki/Pyrophoricity

    The creation of sparks from metals is based on the pyrophoricity of small metal particles, and pyrophoric alloys are made for this purpose. [2] Practical applications include the sparking mechanisms in lighters and various toys, using ferrocerium; starting fires without matches, using a firesteel; the flintlock mechanism in firearms; and spark testing ferrous metals.