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  2. 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]

  3. 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:

  4. Oxygen compounds - Wikipedia

    en.wikipedia.org/wiki/Oxygen_compounds

    The rest of the Earth's crust is formed also of oxygen compounds, most importantly calcium carbonate (in limestone) and silicates (in feldspars). Water-soluble silicates in the form of Na 4 SiO 4, Na 2 SiO 3, and Na 2 Si 2 O 5 are used as detergents and adhesives. [6] Peroxides retain some of oxygen's original molecular structure ((− O-O −).

  5. Bent molecular geometry - Wikipedia

    en.wikipedia.org/wiki/Bent_molecular_geometry

    In chemistry, molecules with a non-collinear arrangement of two adjacent bonds have bent molecular geometry, also known as angular or V-shaped. Certain atoms, such as oxygen, will almost always set their two (or more) covalent bonds in non-collinear directions due to their electron configuration .

  6. Dioxygen difluoride - Wikipedia

    en.wikipedia.org/wiki/Dioxygen_difluoride

    Dioxygen difluoride's structure. The bonding within dioxygen difluoride has been the subject of considerable speculation, particularly because of the very short O−O distance and the long O−F distances. The O−O bond length is within 2 pm of the 120.7 pm distance for the O=O double bond in the dioxygen molecule, O 2.

  7. Hypofluorous acid - Wikipedia

    en.wikipedia.org/wiki/Hypofluorous_acid

    Hypofluorous acid, chemical formula H O F, is the only known oxyacid of fluorine and the only known oxoacid in which the main atom gains electrons from oxygen to create a negative oxidation state. The oxidation state of the oxygen in this acid (and in the hypofluorite ion OF − and in its salts called hypofluorites) is 0, while its valence is 2.

  8. Tetraoxygen difluoride - Wikipedia

    en.wikipedia.org/wiki/Tetraoxygen_difluoride

    Tetraoxygen difluoride is an inorganic chemical compound of oxygen, belonging to the family of oxygen fluorides. It consists of two O 2 F units bound together with a weak O-O bond, and is the dimer of the O 2 F radical.

  9. Dioxygen monofluoride - Wikipedia

    en.wikipedia.org/wiki/Dioxygen_monofluoride

    Dioxygen monofluoride is a binary inorganic compound radical of fluorine and oxygen with the chemical formula O 2 F. [ 1 ] [ 2 ] [ 3 ] The compound is stable only at low temperature. This is one of many known oxygen fluorides .