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  2. Lewis structure - Wikipedia

    en.wikipedia.org/wiki/Lewis_structure

    [1] [2] [3] Introduced by Gilbert N. Lewis in his 1916 article The Atom and the Molecule, a Lewis structure can be drawn for any covalently bonded molecule, as well as coordination compounds. [4] Lewis structures extend the concept of the electron dot diagram by adding lines between atoms to represent shared pairs in a chemical bond.

  3. Chloride - Wikipedia

    en.wikipedia.org/wiki/Chloride

    A chloride ion is a structural component of some proteins; for example, it is present in the amylase enzyme. For these roles, chloride is one of the essential dietary mineral (listed by its element name chlorine). Serum chloride levels are mainly regulated by the kidneys through a variety of transporters that are present along the nephron. [19]

  4. Lone pair - Wikipedia

    en.wikipedia.org/wiki/Lone_pair

    Lone pairs (shown as pairs of dots) in the Lewis structure of hydroxide. In chemistry, a lone pair refers to a pair of valence electrons that are not shared with another atom in a covalent bond [1] and is sometimes called an unshared pair or non-bonding pair. Lone pairs are found in the outermost electron shell of atoms.

  5. Charge number - Wikipedia

    en.wikipedia.org/wiki/Charge_number

    A charge number also can help when drawing Lewis dot structures. For example, if the structure is an ion, the charge will be included outside of the Lewis dot structure. Since there is a negative charge on the outside of the Lewis dot structure, one electron needs to be added to the structure.

  6. Aluminium iodide - Wikipedia

    en.wikipedia.org/wiki/Aluminium_iodide

    Like the related chloride and bromide, AlI 3 is a strong Lewis acid and will absorb water from the atmosphere. It is employed as a reagent for the scission of certain kinds of C-O and N-O bonds. It cleaves aryl ethers and deoxygenates epoxides. [5]

  7. Iodine monochloride - Wikipedia

    en.wikipedia.org/wiki/Iodine_monochloride

    Iodine monochloride is an interhalogen compound with the formula ICl.It is a red-brown chemical compound that melts near room temperature.Because of the difference in the electronegativity of iodine and chlorine, this molecule is highly polar and behaves as a source of I +.

  8. Aluminium chloride - Wikipedia

    en.wikipedia.org/wiki/Aluminium_chloride

    AlCl 3 is a common Lewis-acid catalyst for Friedel-Crafts reactions, both acylations and alkylations. [14] Important products are detergents and ethylbenzene. These types of reactions are the major use for aluminium chloride, for example, in the preparation of anthraquinone (used in the dyestuffs industry) from benzene and phosgene. [12]

  9. Rubidium chloride - Wikipedia

    en.wikipedia.org/wiki/Rubidium_chloride

    Rubidium chloride is the chemical compound with the formula RbCl. This alkali metal halide salt is composed of rubidium and chlorine , and finds diverse uses ranging from electrochemistry to molecular biology .