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  2. Phosphorus pentachloride - Wikipedia

    en.wikipedia.org/wiki/Phosphorus_pentachloride

    As for the reactions with organic compounds, the use of PCl 5 has been superseded by SO 2 Cl 2. The reaction of phosphorus pentoxide and PCl 5 produces POCl 3 : [18] [page needed] 6 PCl 5 + P 4 O 10 → 10 POCl 3. PCl 5 chlorinates nitrogen dioxide to form unstable nitryl chloride: PCl 5 + 2 NO 2 → PCl 3 + 2 NO 2 Cl 2 NO 2 Cl → 2 NO 2 + Cl 2

  3. Hypervalent molecule - Wikipedia

    en.wikipedia.org/wiki/Hypervalent_molecule

    Hypervalent iodine compounds are useful reagents in organic chemistry (e.g. Dess–Martin periodinane) Tetra-, penta- and hexavalent phosphorus, silicon, and sulfur compounds (e.g. PCl 5, PF 5, SF 6, sulfuranes and persulfuranes) Noble gas compounds (ex. xenon tetrafluoride, XeF 4) Halogen polyfluorides (ex. chlorine pentafluoride, ClF 5)

  4. Phosphoryl chloride - Wikipedia

    en.wikipedia.org/wiki/Phosphoryl_chloride

    This is unlike phosphorus pentachloride which exists as neutral PCl 5 molecules in the gas and liquid states but adopts the ionic form [PCl 4] + [PCl 6] − (tetrachlorophosphonium hexachlorophosphate(V)) in the solid state. The average bond lengths in the crystal structure of POCl 3 are 1.98 Å for P–Cl and 1.46 Å for P=O. [5]

  5. 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.

  6. VSEPR theory - Wikipedia

    en.wikipedia.org/wiki/VSEPR_theory

    The number of electron pairs in the valence shell of a central atom is determined after drawing the Lewis structure of the molecule, and expanding it to show all bonding groups and lone pairs of electrons. [1]: 410–417 In VSEPR theory, a double bond or triple bond is treated as a single bonding group. [1]

  7. Phosphorus - Wikipedia

    en.wikipedia.org/wiki/Phosphorus

    PCl 5 and PF 5 are common compounds. PF 5 is a colourless gas and the molecules have trigonal bipyramidal geometry. PCl 5 is a colourless solid which has an ionic formulation of PCl 4 + PCl 6 −, but adopts the trigonal bipyramidal geometry when molten or in the vapour phase. [17] PBr 5 is an unstable solid formulated as PBr 4 + Br − and PI ...

  8. Lewis acids and bases - Wikipedia

    en.wikipedia.org/wiki/Lewis_acids_and_bases

    Most compounds considered to be Lewis acids require an activation step prior to formation of the adduct with the Lewis base. Complex compounds such as Et 3 Al 2 Cl 3 and AlCl 3 are treated as trigonal planar Lewis acids but exist as aggregates and polymers that must be degraded by the Lewis base. [10] A simpler case is the formation of adducts ...

  9. Pnictogen - Wikipedia

    en.wikipedia.org/wiki/Pnictogen

    For nitrogen, the +5 state is typically serves as only a formal explanation of molecules like N 2 O 5, as the high electronegativity of nitrogen causes the electrons to be shared almost evenly. [clarification needed] Pnictogen compounds with coordination number 5 are hypervalent. Nitrogen(V) fluoride is only theoretical and has not been ...