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  2. Neutralization (chemistry) - Wikipedia

    en.wikipedia.org/wiki/Neutralization_(chemistry)

    The same equation relating the concentrations of acid and base applies. The concept of neutralization is not limited to reactions in solution. For example, the reaction of limestone with acid such as sulfuric acid is also a neutralization reaction. [Ca,Mg]CO 3 (s) + H 2 SO 4 (aq) → (Ca 2+, Mg 2+)(aq) + SO 2− 4 (aq) + CO 2 (g) + H 2 O

  3. Salt metathesis reaction - Wikipedia

    en.wikipedia.org/wiki/Salt_metathesis_reaction

    A neutralization reaction is a type of double replacement reaction. A neutralization reaction occurs when an acid reacts with an equal amount of a base. This reaction usually produces a salt. One example, hydrochloric acid reacts with disodium iron tetracarbonyl to produce the iron dihydride: 2 HCl + Na 2 Fe(CO) 4 → 2 NaCl + H 2 Fe(CO) 4

  4. Salt (chemistry) - Wikipedia

    en.wikipedia.org/wiki/Salt_(chemistry)

    If the two solutions have hydrogen ions and hydroxide ions as the counterions, they will react with one another in what is called an acid–base reaction or a neutralization reaction to form water. [12] Alternately the counterions can be chosen to ensure that even when combined into a single solution they will remain soluble as spectator ions. [11]

  5. Acid salt - Wikipedia

    en.wikipedia.org/wiki/Acid_salt

    Structure of ammonium chloride. Acid–base property of the resulting solution from a neutralization reaction depends on the remaining salt products. A salt containing reactive cations undergo hydrolysis by which they react with water molecules, causing deprotonation of the conjugate acids.

  6. Saponification - Wikipedia

    en.wikipedia.org/wiki/Saponification

    The reaction of fatty acids with base is the other main method of saponification. In this case, the reaction involves neutralization of the carboxylic acid . The neutralization method is used to produce industrial soaps such as those derived from magnesium, the transition metals, and aluminium.

  7. Buffer solution - Wikipedia

    en.wikipedia.org/wiki/Buffer_solution

    and only a little is consumed in the neutralization reaction (which is the reaction that results in an increase in pH) OH − + H + → H 2 O. Once the acid is more than 95% deprotonated , the pH rises rapidly because most of the added alkali is consumed in the neutralization reaction.

  8. Sodium amide - Wikipedia

    en.wikipedia.org/wiki/Sodium_amide

    Sodium amide is a common reagent with a long history of laboratory use. [9] It can decompose violently on contact with water, producing ammonia and sodium hydroxide: NaNH 2 + H 2 O → NH 3 + NaOH. When burned in oxygen, it will give oxides of sodium (which react with the produced water, giving sodium hydroxide) along with nitrogen oxides:

  9. Ionic bonding - Wikipedia

    en.wikipedia.org/wiki/Ionic_bonding

    Ionic bonding is a type of chemical bonding that involves the electrostatic attraction between oppositely charged ions, or between two atoms with sharply different electronegativities, [1] and is the primary interaction occurring in ionic compounds.