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  2. Ionic bonding - Wikipedia

    en.wikipedia.org/wiki/Ionic_bonding

    Thus, bonding is considered ionic where the ionic character is greater than the covalent character. The larger the difference in electronegativity between the two types of atoms involved in the bonding, the more ionic (polar) it is. Bonds with partially ionic and partially covalent character are called polar covalent bonds. For example, Na–Cl ...

  3. Electronegativity - Wikipedia

    en.wikipedia.org/wiki/Electronegativity

    Electrostatic potential map of a water molecule, where the oxygen atom has a more negative charge (red) than the positive (blue) hydrogen atoms. Electronegativity, symbolized as χ, is the tendency for an atom of a given chemical element to attract shared electrons (or electron density) when forming a chemical bond. [1]

  4. Intramolecular force - Wikipedia

    en.wikipedia.org/wiki/Intramolecular_force

    Electrons in an ionic bond tend to be mostly found around one of the two constituent atoms due to the large electronegativity difference between the two atoms, generally more than 1.9, (greater difference in electronegativity results in a stronger bond); this is often described as one atom giving electrons to the other. [5]

  5. Chemical bond - Wikipedia

    en.wikipedia.org/wiki/Chemical_bond

    The bond results because the metal atoms become somewhat positively charged due to loss of their electrons while the electrons remain attracted to many atoms, without being part of any given atom. Metallic bonding may be seen as an extreme example of delocalization of electrons over a large system of covalent bonds, in which every atom ...

  6. Alkali metal - Wikipedia

    en.wikipedia.org/wiki/Alkali_metal

    The alkali metal peroxides are ionic compounds that are unstable in water. The peroxide anion is weakly bound to the cation, and it is hydrolysed, forming stronger covalent bonds. Na 2 O 2 + 2H 2 O → 2NaOH + H 2 O 2. The other oxygen compounds are also unstable in water. 2KO 2 + 2H 2 O → 2KOH + H 2 O 2 + O 2 [144] Li 2 O + H 2 O → 2LiOH

  7. Oxidation state - Wikipedia

    en.wikipedia.org/wiki/Oxidation_state

    In chemistry, the oxidation state, or oxidation number, is the hypothetical charge of an atom if all of its bonds to other atoms were fully ionic. It describes the degree of oxidation (loss of electrons) of an atom in a chemical compound. Conceptually, the oxidation state may be positive, negative or zero.

  8. Metallic bonding - Wikipedia

    en.wikipedia.org/wiki/Metallic_bonding

    Metals are insoluble in water or organic solvents, unless they undergo a reaction with them. Typically, this is an oxidation reaction that robs the metal atoms of their itinerant electrons, destroying the metallic bonding. However metals are often readily soluble in each other while retaining the metallic character of their bonding.

  9. Inductive effect - Wikipedia

    en.wikipedia.org/wiki/Inductive_effect

    Monochloroacetic acid (pK a =2.82), though, is stronger than formic acid, due to the electron-withdrawing effect of chlorine promoting ionization. In benzoic acid, the carbon atoms which are present in the ring are sp 2 hybridised. As a result, benzoic acid (pK a =4.20) is a stronger acid than cyclohexanecarboxylic acid (pK a =4.87).