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  2. Silicon–oxygen bond - Wikipedia

    en.wikipedia.org/wiki/Siliconoxygen_bond

    A siliconoxygen bond (Si−O bond) is a chemical bond between silicon and oxygen atoms that can be found in many inorganic and organic compounds. [1] In a siliconoxygen bond, electrons are shared unequally between the two atoms , with oxygen taking the larger share due to its greater electronegativity .

  3. Disiloxane - Wikipedia

    en.wikipedia.org/wiki/Disiloxane

    A secondary and much smaller contribution to the siliconoxygen bond in disiloxanes involves π backbonding from oxygen 2p orbitals to silicon 3d orbitals, p(O) → d(Si). Because of this interaction, the Si−O bonds can exhibit some partial double bond behavior and the oxygen atoms are much less basic than in the carbon analogue, dimethyl ...

  4. Bonding in solids - Wikipedia

    en.wikipedia.org/wiki/Bonding_in_solids

    Intermediate organization of covalent bonds: Regarding the organization of covalent bonds, recall that classic molecular solids, as stated above, consist of small, non-polar covalent molecules. The example given, paraffin wax , is a member of a family of hydrocarbon molecules of differing chain lengths, with high-density polyethylene at the ...

  5. Fleming–Tamao oxidation - Wikipedia

    en.wikipedia.org/wiki/Fleming–Tamao_oxidation

    The Fleming–Tamao oxidation, or Tamao–Kumada–Fleming oxidation, converts a carbon–silicon bond to a carbon–oxygen bond with a peroxy acid or hydrogen peroxide. Fleming–Tamao oxidation refers to two slightly different conditions developed concurrently in the early 1980s by the Kohei Tamao and Ian Fleming research groups. [1] [2] [3]

  6. Chemical polarity - Wikipedia

    en.wikipedia.org/wiki/Chemical_polarity

    The bond dipole moments do not cancel, so that the molecule forms a molecular dipole with its negative pole at the oxygen and its positive pole midway between the two hydrogen atoms. In the figure each bond joins the central O atom with a negative charge (red) to an H atom with a positive charge (blue).

  7. Electronegativity - Wikipedia

    en.wikipedia.org/wiki/Electronegativity

    Pauling first proposed [3] the concept of electronegativity in 1932 to explain why the covalent bond between two different atoms (A–B) is stronger than the average of the A–A and the B–B bonds. According to valence bond theory , of which Pauling was a notable proponent, this "additional stabilization" of the heteronuclear bond is due to ...

  8. Teenager accused in Wisconsin school shooting had a ...

    www.aol.com/teenager-accused-wisconsin-school...

    MADISON, Wis. — A 15-year-old girl who police say killed two people and wounded multiple others at a private Christian school in Wisconsin endured what appeared to be a tumultuous home life ...

  9. Antibonding molecular orbital - Wikipedia

    en.wikipedia.org/wiki/Antibonding_molecular_orbital

    The density of the electrons in the orbital is concentrated outside the bonding region and acts to pull one nucleus away from the other and tends to cause mutual repulsion between the two atoms. [1] [2] This is in contrast to a bonding molecular orbital, which has a lower energy than that of the separate atoms, and is responsible for chemical ...