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  2. Bromine - Wikipedia

    en.wikipedia.org/wiki/Bromine

    The halogens form many binary, diamagnetic interhalogen compounds with stoichiometries XY, XY 3, XY 5, and XY 7 (where X is heavier than Y), and bromine is no exception. Bromine forms a monofluoride and monochloride, as well as a trifluoride and pentafluoride. Some cationic and anionic derivatives are also characterised, such as BrF − 2, BrCl ...

  3. Bromine compounds - Wikipedia

    en.wikipedia.org/wiki/Bromine_compounds

    The halogens form many binary, diamagnetic interhalogen compounds with stoichiometries XY, XY 3, XY 5, and XY 7 (where X is heavier than Y), and bromine is no exception. Bromine forms a monofluoride and monochloride, as well as a trifluoride and pentafluoride. Some cationic and anionic derivatives are also characterised, such as BrF − 2, BrCl ...

  4. Halogen - Wikipedia

    en.wikipedia.org/wiki/Halogen

    The halogens (/ ˈ h æ l ə dʒ ə n, ˈ h eɪ-,-l oʊ-,-ˌ dʒ ɛ n / [1] [2] [3]) are a group in the periodic table consisting of six chemically related elements: fluorine (F), chlorine (Cl), bromine (Br), iodine (I), and the radioactive elements astatine (At) and tennessine (Ts), though some authors [4] would exclude tennessine as its chemistry is unknown and is theoretically expected to ...

  5. Interhalogen - Wikipedia

    en.wikipedia.org/wiki/Interhalogen

    Most interhalogens are halogen fluorides, and all but three (IBr, AtBr, and AtI) of the remainder are halogen chlorides. Chlorine and bromine can each bond to five fluorine atoms, and iodine can bond to seven. AX and AX 3 interhalogens can form between two halogens whose electronegativities are relatively close to one another. When ...

  6. Halocarbon - Wikipedia

    en.wikipedia.org/wiki/Halocarbon

    Halocarbon compounds are chemical compounds in which one or more carbon atoms are linked by covalent bonds with one or more halogen atoms (fluorine, chlorine, bromine or iodine – group 17) resulting in the formation of organofluorine compounds, organochlorine compounds, organobromine compounds, and organoiodine compounds.

  7. Free-radical halogenation - Wikipedia

    en.wikipedia.org/wiki/Free-radical_halogenation

    The relative rates at which different halogens react vary considerably: [citation needed] fluorine (108) > chlorine (1) > bromine (7 × 10 −11) > iodine (2 × 10 −22).. Radical fluorination with the pure element is difficult to control and highly exothermic; care must be taken to prevent an explosion or a runaway reaction.

  8. Diatomic molecule - Wikipedia

    en.wikipedia.org/wiki/Diatomic_molecule

    At slightly elevated temperatures, the halogens bromine (Br 2) and iodine (I 2) also form diatomic gases. [3] All halogens have been observed as diatomic molecules, except for astatine and tennessine, which are uncertain. Other elements form diatomic molecules when evaporated, but these diatomic species repolymerize when cooled.

  9. Period (periodic table) - Wikipedia

    en.wikipedia.org/wiki/Period_(periodic_table)

    In the periodic table of the elements, each numbered row is a period.. A period on the periodic table is a row of chemical elements.All elements in a row have the same number of electron shells.