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  2. Fluorine compounds - Wikipedia

    en.wikipedia.org/wiki/Fluorine_compounds

    The tetrafluorides show a mixture of ionic and covalent bonding. Zirconium, hafnium, plus many of the actinides form tetrafluorides with an ionic structure that puts the metal cation in an 8-coordinate square antiprism. [58] [59] Melting points are around 1000 °C. [60] Titanium and tin tetrafluorides are polymeric, with melting points below ...

  3. Carbon–fluorine bond - Wikipedia

    en.wikipedia.org/wiki/Carbon–fluorine_bond

    The carbon–fluorine bond is a polar covalent bond between carbon and fluorine that is a component of all organofluorine compounds. It is one of the strongest single bonds in chemistry (after the B–F single bond, Si–F single bond, and H–F single bond), and relatively short, due to its partial ionic character.

  4. Dioxygen difluoride - Wikipedia

    en.wikipedia.org/wiki/Dioxygen_difluoride

    Dioxygen difluoride is a compound of fluorine and oxygen with the molecular formula O 2 F 2. It can exist as an orange-red colored solid which melts into a red liquid at −163 °C (110 K). It can exist as an orange-red colored solid which melts into a red liquid at −163 °C (110 K).

  5. Oxygen fluoride - Wikipedia

    en.wikipedia.org/wiki/Oxygen_fluoride

    Oxygen difluoride. A common preparative method involves fluorination of sodium hydroxide: 2 F 2 + 2 NaOH → OF 2 + 2 NaF + H 2 O. OF 2 is a colorless gas at room temperature and a yellow liquid below 128 K. Oxygen difluoride has an irritating odor and is poisonous. [3] It reacts quantitatively with aqueous haloacids to give free halogens:

  6. Covalent radius of fluorine - Wikipedia

    en.wikipedia.org/wiki/Covalent_radius_of_fluorine

    Bonds to fluorine have considerable ionic character, a result of its small atomic radius and large electronegativity. Therefore, the bond length of F is influenced by its ionic radius, the size of ions in an ionic crystal, which is about 133 pm for fluoride ions. The ionic radius of fluoride is much larger than its covalent radius.

  7. Fluorine - Wikipedia

    en.wikipedia.org/wiki/Fluorine

    [102] [103] Alkaline earth difluorides possess strong ionic bonds but are insoluble in water, [86] with the exception of beryllium difluoride, which also exhibits some covalent character and has a quartz-like structure. [104] Rare earth elements and many other metals form mostly ionic trifluorides. [105] [106] [107]

  8. Oxygen difluoride - Wikipedia

    en.wikipedia.org/wiki/Oxygen_difluoride

    Oxygen difluoride is a chemical compound with the formula OF 2. As predicted by VSEPR theory, the molecule adopts a bent molecular geometry. [citation needed] It is a strong oxidizer and has attracted attention in rocketry for this reason. [5] With a boiling point of −144.75 °C, OF 2 is the most volatile (isolable) triatomic compound. [6]

  9. Carbon–oxygen bond - Wikipedia

    en.wikipedia.org/wiki/Carbonoxygen_bond

    A carbonoxygen bond is a polar covalent bond between atoms of carbon and oxygen. [1] [2] [3]: 16–22 Carbonoxygen bonds are found in many inorganic compounds such as carbon oxides and oxohalides, carbonates and metal carbonyls, [4] and in organic compounds such as alcohols, ethers, and carbonyl compounds.